Class 12 Physics (Part 1) Chapter 4 Capacitors and Dielectrics

This quiz on ICSE Class 12 Physics Chapter 4: Capacitors and Dielectrics is designed to assess students' conceptual understanding and application skills related to the behavior of capacitors in electric circuits. It covers key topics such as the principle of capacitance, types of capacitors, energy stored in a capacitor, effect of dielectric materials, and combinations of capacitors in series and parallel. The quiz encourages analytical thinking through numerical problems and theoretical questions, helping students reinforce their grasp of electric potential energy, capacitance calculations, and the role of dielectrics in enhancing capacitor performance. Ideal for self-assessment and exam preparation, this quiz aligns with the ICSE curriculum and promotes deeper insight into electrostatics.

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Category: Capacitors with dielectric material between plates

1. A parallel-plate capacitor has plates of area $A = 0.1 \, \text{m}^2$ separated by $d = 1 \, \text{mm}$. A dielectric slab ($K = 3$) of thickness $t = 0.6 \, \text{mm}$ is placed midway between the plates, not touching either plate. What is the capacitance?

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Category: Energy Density:

2. (A) The energy density in a capacitor can be expressed as $\frac{1}{2} \varepsilon_0 E^2$.
(R) Energy density is defined as the energy stored per unit volume between the plates of a capacitor.

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Category: Capacitor Configurations:

3. Two capacitors with $C_1 = 4\,\mu F$ charged to $V_1 = 100\,V$ and $C_2 = 6\,\mu F$ charged to $V_2 = 200\,V$ (opposite polarity) are connected. What is the common potential after redistribution?

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Category: Relation between charge, potential, and capacitance

4. What is the net charge on a capacitor when one plate has $+Q$ and the other has $-Q$?

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Category: Polarization of Dielectrics:

5. (A) When a dielectric material is placed in an electric field, it gets polarized.
(R) The polarization of a dielectric occurs due to the alignment of its permanent or induced dipole moments in the direction of the applied electric field.

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Category: Energy Stored in a Charged Capacitor

6. (A) The energy stored in a capacitor is given by $\frac{1}{2} C V^2$.
(R) The work done to charge a capacitor is stored as electric potential energy.

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Category: Combinations of Capacitors

7. Three capacitors of capacitances 4 \mu F, 6 \mu F, and 12 \mu F are connected in series and then connected to a 24 V battery. What is the potential difference across the 6 \mu F capacitor?

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Category: Energy Stored in a Charged Capacitor

8. (A) When two identical capacitors charged to the same potential are connected in parallel, the total energy stored in the combination becomes half of the initial total energy.
(R) The loss in energy occurs due to redistribution of charges, resulting in dissipation as heat.

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Category: Energy Stored in a Charged Capacitor

9. A parallel-plate air capacitor has a capacitance of 100 pF. When a dielectric slab of thickness equal to half the plate separation is inserted between the plates, the capacitance becomes 160 pF. What is the ratio of the energy stored in the capacitor before and after inserting the dielectric, if it remains connected to the same voltage source?

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Category: Behavior of free electrons in conductors

10. A conductor has a cross-sectional area of $1 \times 10^{-6}$ m$^2$ and carries a current of 2 A. If the number density of free electrons in the conductor is $8.5 \times 10^{28}$ per m$^3$, what is the drift velocity of the electrons?

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Category: Applications and Special Cases

11. A parallel plate capacitor of plate area $A$ and separation $d$ is first charged with air as the dielectric ($C_0 = \frac{\varepsilon_0 A}{d}$). Then, a dielectric slab of dielectric constant $K = 6$ fills the entire space between the plates. If the stored energy decreases by a factor of $F$, what is $F$?

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Category: Dielectric strength

12. (A) The maximum voltage that can be applied across a parallel-plate capacitor with a dielectric depends on its dielectric strength.
(R) Dielectric strength is the minimum electric field required to cause breakdown in the material, limiting the maximum safe voltage.

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Category: Capacitors with dielectric material between plates

13. (A) The capacitance of a parallel-plate capacitor increases when a dielectric material is inserted between its plates.
(R) A dielectric material reduces the effective electric field between the plates, increasing the charge storage capacity.

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Category: Effect of dielectric material on capacitance

14. (A) Introducing a dielectric slab between the plates of a parallel-plate capacitor increases its capacitance.
(R) The dielectric reduces the effective electric field between the plates, allowing more charge to be stored for the same potential difference.

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Category: Relation between charge, potential, and capacitance

15. If a dielectric material with a dielectric constant $K = 4$ is inserted between the plates of a parallel-plate capacitor, how does the capacitance change compared to when there was air between the plates?

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Category: Classification of materials into conductors and insulators

16. (A) The free electrons in a conductor cannot escape from its surface unless external energy is supplied.
(R) In conductors, the free electrons are bound to the conductor as a whole despite being unbound to individual atoms.

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Category: Effect of inserting dielectric material between plates

17. A capacitor is disconnected from the battery, and a dielectric slab is inserted between its plates. How does the energy stored in the capacitor change?

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Category: Dependence of Capacitance on Various Factors

18. A parallel-plate capacitor has a capacitance $C_0$ when there is air between the plates. If a dielectric slab of dielectric constant $K = 4$ and thickness equal to half the separation between the plates is inserted, what is the new capacitance?

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Category: Properties of insulators

19. (A) The capacitance of a capacitor increases when a dielectric material is placed between its plates.
(R) The dielectric constant $K$ is defined as the ratio of the capacitance with the dielectric material to the capacitance in vacuum.

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Category: Electric Potential Energy:

20. What is the formula for electric potential energy stored in a capacitor with charge $Q$ and capacitance $C$?

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Category: Conductors and Insulators

21. Which of the following materials is a conductor of electricity?

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Category: Electric polarization of dielectrics

22. A polar dielectric is subjected to an electric field $E_0$. If the temperature of the dielectric is increased, how does the net dipole moment per unit volume ($P$) change?

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Category: Electric Field and Force:

23. A parallel-plate capacitor with plate area $A$ and separation $d$ stores energy density $u$ when charged to potential difference $V$. What is the expression for energy density if the electric field between the plates is $E$ and the permittivity of free space is $\varepsilon_0$?

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Category: Behavior of free electrons in conductors

24. (A) The capacitance of a conductor increases when it is placed in a dielectric medium compared to vacuum.
(R) The presence of a dielectric medium reduces the effective electric field between the plates of a capacitor.

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Category: Dielectrics: materials that do not conduct electricity but can exhibit electric effects

25. Which of the following materials is likely to have the highest dielectric strength?

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Category: Dielectric constant of the material between the plates

26. (A) The dielectric constant of a material is always greater than or equal to 1.
(R) For vacuum, the dielectric constant K = 1 by definition.

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Category: Bound charges in insulators

27. A parallel-plate capacitor has a charge $Q$ and plate area $A$. A dielectric slab with dielectric constant $K = 4$ is inserted between the plates. What is the electric field inside the dielectric if the permittivity of free space is $\epsilon_0$?

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Category: Dielectrics: materials that do not conduct electricity but can exhibit electric effects

28. Consider the molecules CO$_2$, H$_2$O, and CH$_4$. Which of the following statements about their dipole moments is correct when subjected to an external electric field?

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Category: Capacitors with dielectric material between plates

29. A parallel-plate capacitor with plate area $A = 0.2 \, \text{m}^2$ and separation $d = 5 \times 10^{-4} \, \text{m}$ initially has air between the plates ($K_{\text{air}} \approx 1$). A metal slab of thickness $t = 2 \times 10^{-4} \, \text{m}$ is inserted between the plates. What is the new capacitance?

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Category: Formula for capacitance of a spherical conductor

30. A spherical conductor of radius $a$ is placed in a medium with dielectric constant $K$. If the capacitance increases by 50\% compared to its value in vacuum, what is the new dielectric constant?

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Category: Combinations of Capacitors

31. (A) When three capacitors of capacitances $C_1$, $C_2$, and $C_3$ are connected in series, the charge on each capacitor remains the same.
(R) In a series combination, the equivalent capacitance $C_{eq}$ is less than the smallest individual capacitance.

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Category: Capacitors in series

32. Two capacitors, $C_1 = 6 \text{ pF}$ and $C_2 = 12 \text{ pF}$, are connected in series across a $9 \text{ V}$ battery. What is the potential difference across the $6 \text{ pF}$ capacitor?

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Category: Distance between the plates

33. A parallel-plate capacitor is charged and then disconnected from the battery. If the distance between the plates is doubled, how does the energy stored in the capacitor change?

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Category: Capacitance of an Isolated Spherical Conductor

34. What is the capacitance of an isolated spherical conductor of radius $a$ placed in vacuum?

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Category: Dependence of Capacitance on Various Factors

35. A parallel-plate capacitor has plate separation $d$ and a dielectric slab of thickness $t$ and dielectric constant $K$ inserted between the plates. What happens to the capacitance if the slab thickness $t$ is increased to $2t$ while keeping the total separation $d$ the same?

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Category: Energy density in capacitors

36. A capacitor is designed to store $2 \, \text{J}$ of energy at a voltage of $1000 \, \text{V}$. If the energy density of the electric field is $0.5 \, \text{J/m}^3$, what volume must the space between the plates occupy?

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Category: Capacitors with dielectric material between plates

37. Which of the following is an example of a polar dielectric?

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Category: Capacitance with Dielectric Slab Inserted

38. (A) The capacitance of a parallel-plate capacitor increases when a dielectric slab is inserted between its plates.
(R) The dielectric slab reduces the effective distance between the plates, thereby increasing the capacitance.

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Category: Properties of conductors

39. Which of the following statements correctly describes free and bound charges in a conductor?

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Category: Effect of dielectric material on capacitance

40. A parallel-plate capacitor has a plate area $A = 100 \, \text{cm}^2$ and separation $d = 1 \, \text{mm}$. A dielectric slab of thickness $t = 0.5 \, \text{mm}$ and dielectric constant $K = 4$ is inserted between the plates. What is the new capacitance?

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Category: Work done in charging the capacitor

41. If the charge on a capacitor is doubled while keeping its capacitance constant, how does the energy stored in the capacitor change?

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Category: Distance between the plates

42. In an experiment with a parallel plate capacitor connected to an electroscope, the plates are initially separated by a distance $d$. If the distance between the plates is increased, what happens to the divergence of the electroscope leaves?

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Category: Force between the Plates of a Charged Capacitor

43. (A) The force $F$ between the plates of a parallel-plate capacitor remains constant when the plates are gradually separated to distance $d$, provided $d$ is small compared to the linear dimension of the plates.
(R) For small separations, the electric field $E$ between the plates remains uniform and is given by $E = \frac{\sigma}{\varepsilon_0}$.

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Category: Behavior of free electrons in conductors

44. In a metal, what distinguishes free charges from bound charges?

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Category: Distance between the plates

45. What happens to the capacitance of a parallel-plate capacitor if the distance between the plates is halved?

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Category: Combinations of Capacitors

46. (A) In a series combination of capacitors, the equivalent capacitance is always less than the smallest individual capacitor in the combination.
(R) The potential difference across each capacitor in a series combination is inversely proportional to its capacitance.

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Category: Electric Field and Force:

47. A parallel-plate capacitor initially has capacitance $C_0$ and is disconnected from the battery. A dielectric slab with dielectric constant $K$ is inserted between the plates. What happens to the force between the plates?

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Category: Work done in charging the capacitor

48. A capacitor is charged from 0 to a final charge $Q$. If the capacitance is $C$, what is the total work done in charging the capacitor?

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Category: Dielectric constant of the material between the plates

49. What is the dielectric constant (K) of a material defined as?

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Category: Energy Density:

50. If a capacitor stores energy U when charged to potential difference V, what will be the energy stored when the same capacitor is charged to 2V?

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Category: Capacitance of a Conductor

51. What is the capacitance of an isolated spherical conductor of radius $a$ placed in vacuum?

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Category: Dielectric strength

52. What is the dielectric strength of a material?

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Category: Capacitance with Dielectric Slab Inserted

53. A parallel-plate capacitor with plate area $A = 2 \, \text{m}^2$ and separation $d = 6 \, \text{mm}$ is charged to $300 \, \text{V}$ and then disconnected from the battery. A metallic slab of thickness $t = 4 \, \text{mm}$ is inserted into the capacitor. What is the new potential difference across the plates?

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Category: Polarization of Dielectrics:

54. What is dielectric strength defined as?

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Category: Energy stored in the electric field of a charged capacitor

55. (A) The energy stored in a parallel-plate capacitor increases when the separation between the plates is decreased while keeping the charge constant.
(R) The energy density in the electric field is proportional to the square of the electric field strength.

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Category: Area of the plates

56. A parallel-plate capacitor has a capacitance of $4 \times 10^{-6} \, \text{F}$ and a plate separation of $2 \times 10^{-3} \, \text{m}$. If the permittivity of free space is $8.85 \times 10^{-12} \, \text{F m}^{-1}$, what is the area of each plate?

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Category: Capacitance of a Parallel-Plate Capacitor with Dielectric Slab

57. (A) The capacitance of a parallel-plate capacitor increases when a dielectric slab is inserted between the plates.
(R) The electric field in the dielectric slab reduces due to polarization, leading to an increase in capacitance.

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Category: Capacitance of a Conductor

58. (A) For an isolated spherical conductor placed in a medium with dielectric constant $K$, the capacitance increases if $K$ is increased.
(R) The capacitance of a spherical conductor is given by $C = 4 \pi \epsilon_0 K a$, where $a$ is the radius of the sphere and $\epsilon_0$ is the permittivity of free space.

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Category: Behavior of free electrons in conductors

59. A conductor has a free electron density of $8 \times 10^{28}$ electrons/m$^3$. When an electric field of $0.5$ V/m is applied, the drift velocity of the electrons is found to be $1.25 \times 10^{-4}$ m/s. What is the average time between successive collisions of the free electrons? Assume the charge of an electron is $1.6 \times 10^{-19}$ C and mass is $9.1 \times 10^{-31}$ kg.

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Category: Capacitance with Dielectric Slab Inserted

60. (A) The capacitance of a parallel-plate capacitor increases when a dielectric slab is inserted between its plates.
(R) The dielectric slab reduces the electric field between the plates, thereby increasing the capacitance.

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Category: Dielectric Strength:

61. What is the dielectric strength of a material?

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Category: Equivalent capacitance in series and parallel combinations

62. Three capacitors of capacitances 2 $\mu$F, 4 $\mu$F, and 8 $\mu$F are connected in parallel. The combination is connected to a 10 V battery. What is the total charge stored in the combination?

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Category: Classification of materials into conductors and insulators

63. A dielectric slab ($K = 5$) is placed in an external electric field $E_0 = 10^4 \, \text{V/m}$. What is the magnitude of the bound charge density at the surface of the dielectric?

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Category: Concept of conduction and polarization

64. (A) When a non-polar dielectric is placed in an electric field, it acquires an induced dipole moment in the direction of the field.
(R) In non-polar dielectrics, the positive and negative charges of the molecules experience electrostatic forces in opposite directions, causing separation of their centers of gravity.

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Category: Electric Potential Energy:

65. A capacitor of capacitance $C = 10 \mu F$ is charged to a potential difference of $V = 100 V$. What is the energy stored in the capacitor?

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Category: Effect of dielectric material on capacitance

66. A parallel-plate capacitor ($A = 200 \, \text{cm}^2$, $d = 2 \, \text{mm}$) has a metallic slab ($t = 0.5 \, \text{mm}$) inserted between the plates. What is the new capacitance?

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Category: Energy Density:

67. What is the formula for energy density in an electric field?

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Category: Energy Density:

68. The energy density in an electric field is given by $u = \frac{1}{2} \varepsilon_0 E^2$. If the electric field strength is doubled while keeping the volume constant, how does the total stored energy change?

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Category: Applications and Special Cases

69. What is the capacitance when a dielectric slab of thickness $t = d$ and dielectric constant $K$ fills the entire space between the plates of a parallel plate capacitor with area $A$ and plate separation $d$?

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Category: Permittivity and dielectric constant

70. When a dielectric slab is inserted between the plates of a parallel plate capacitor, what happens to the capacitance if the battery remains connected?

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Category: Dielectrics and Electric Polarization

71. When a dielectric slab is placed in an external electric field $E_0$, the resultant electric field inside the dielectric is reduced to $E = E_0 / K$. What causes this reduction?

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Category: Force between the Plates of a Charged Capacitor

72. If the potential difference between the plates of a parallel-plate capacitor is $V$, and the charge on each plate is $Q$, what is the energy stored in the capacitor?

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Category: Electric Potential Energy:

73. A parallel-plate capacitor with plate area $A$ and separation $d$ is charged to a potential difference $V$. If the plates are pulled apart to a distance $2d$ while maintaining the same charge $Q$, what happens to the energy density in the region between the plates?

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Category: Formula for capacitance of a spherical conductor

74. Earth can be approximated as a spherical conductor with radius $6400 \, km$. What would be its capacitance if it were placed in a medium with $K = 5$? (Given: $\frac{1}{4 \pi \varepsilon_0} = 9 \times 10^9 \, N m^2 C^{-2}$)

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Category: Dependence of Capacitance on Various Factors

75. (A) If the area of the plates of a parallel-plate capacitor is doubled and the distance between them is halved while keeping the dielectric medium unchanged, the capacitance increases by a factor of 4.
(R) The capacitance of a parallel-plate capacitor is given by $C = \frac{\varepsilon_0 K A}{d}$, where changes in area ($A$) and distance ($d$) directly affect the capacitance proportionally.

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Category: Free and Bound Charges Inside a Conductor

76. (A) The capacitance of a conductor depends on the amount of free charge present in it.
(R) Free charges are responsible for increasing the potential of the conductor when an external electric field is applied.

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Category: Units of capacitance

77. (A) The unit of capacitance, farad, is equivalent to $\text{M}^{-1} \text{L}^{-2} \text{T}^4 \text{A}^2$.
(R) Farad is defined as the capacitance that produces a potential difference of 1 volt when charged with 1 coulomb of charge.

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Category: Dependence of Capacitance on Various Factors

78. The capacitance of a parallel-plate capacitor is directly proportional to:

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Category: Bound charges in insulators

79. Two different dielectric slabs of equal thickness but dielectric constants $K_1$ and $K_2$ are inserted into a parallel-plate capacitor such that they each fill half the plate area. What is the effective dielectric constant of this arrangement?

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Category: Capacitance of an Isolated Spherical Conductor

80. A spherical conductor of radius 5 cm is placed in a medium with dielectric constant $K = 3$. Calculate its capacitance. (Given $\epsilon_0 = 8.85 \times 10^{-12} \, \text{F m}^{-1}$)

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Category: Relation between charge, potential, and capacitance

81. Two capacitors, $C_1 = 2 \mu F$ and $C_2 = 4 \mu F$, are connected in series and charged with a potential difference of $12 V$. What is the charge on each capacitor?

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Category: Dielectric Strength:

82. Which unit is used to express dielectric strength?

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Category: Permittivity and dielectric constant

83. An electric field $E_0$ exists between the plates of a parallel-plate capacitor in vacuum. If a dielectric with $K = 4$ is inserted, what is the new electric field $E$ within the dielectric?

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Category: Behavior of free electrons in conductors

84. A copper wire with a cross-sectional area of $10^{-6}$ m$^2$ carries a current of $1.6$ A. If the free electron density in copper is $8 \times 10^{28}$ electrons/m$^3$, what is the drift velocity of the electrons? (Charge of electron, $e = 1.6 \times 10^{-19}$ C)

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Category: Energy density in capacitors

85. A parallel-plate capacitor has plates of area 50 cm$^2$ separated by 1 mm. When charged to 200 V, what is the energy density between its plates? ($\varepsilon_0 = 8.85 \times 10^{-12}$ F/m)

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Category: Dependence of Capacitance on Various Factors

86. An isolated spherical conductor of radius $R$ has capacitance $C$ in vacuum. What will be its capacitance if it is placed in a medium with dielectric constant $K = 3$?

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Category: Bound charges in insulators

87. What happens to the electrons in a dielectric when an external electric field is applied?

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Category: Electric Field and Force:

88. How does introducing a dielectric affect the electric field inside a capacitor when the battery remains connected?

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Category: Bound charges in insulators

89. (A) The electric field inside a dielectric slab placed between the plates of a parallel-plate capacitor is reduced by a factor equal to the dielectric constant $K$.
(R) The induced bound charges on the surfaces of the dielectric slab create an opposing electric field that partially cancels the external field.

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Category: Electric polarization of dielectrics

90. What is the dielectric strength of air at NTP?

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Category: Electric Potential Energy:

91. The energy density in an electric field between capacitor plates depends on which of these quantities?

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Category: Concept of conduction and polarization

92. (A) In a polar dielectric, molecules have a permanent dipole moment.
(R) The centers of positive and negative charges in polar molecules are separated by a finite distance.

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Category: Effect of dielectric material on capacitance

93. A parallel-plate capacitor with plate separation $d$ and capacitance $C_0$ is charged to a potential difference $V_0$ and then disconnected from the battery. A dielectric slab of dielectric constant $K = 2$ is inserted to fill the entire space between the plates. What is the ratio of the electric field inside the dielectric to the original electric field?

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Category: Bound charges in insulators

94. (A) When a dielectric slab of dielectric constant $K = 2$ is placed between the plates of a parallel-plate capacitor, the bound charge induced on the dielectric surface will be half the original charge on the plates.
(R) The bound charge $Q'$ on the dielectric surface is given by $Q' = Q \left(1 - \frac{1}{K}\right)$.

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Category: Capacitance of a Parallel-Plate Capacitor with Dielectric Slab

95. (A) A metallic slab of thickness $t$ inserted between the plates of a parallel-plate capacitor increases its capacitance significantly compared to inserting a dielectric slab of the same thickness.
(R) The electric field inside a metallic slab becomes zero, effectively reducing the separation between the plates to $(d - t)$, whereas in a dielectric slab, the field reduces but does not vanish.

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Category: Distance between the plates

96. What is the area of the plates required for a parallel-plate capacitor to have a capacitance of 2 F when the plates are separated by 0.5 cm? (Given $\varepsilon_0 = 8.85 \times 10^{-12}$ F/m)

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Category: Polarization of Dielectrics:

97. (A) When a non-polar dielectric is placed in an external electric field, it develops a net dipole moment due to the separation of positive and negative charge centers.

(R) The induced dipole moment in non-polar dielectrics aligns perfectly with the external electric field regardless of thermal agitation.

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Category: Equivalent capacitance in series and parallel combinations

98. A 100 V battery is connected across three capacitors in series with capacitances 1 \mu F, 2 \mu F, and 3 \mu F. What is the charge on each capacitor?

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Category: Energy density in capacitors

99. Two capacitor plates are not perfectly parallel, causing the electric field to vary linearly from $1 \times 10^5 \, \text{V/m}$ to $3 \times 10^5 \, \text{V/m}$ across the plates. What is the average energy density in the region between the plates?

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Category: Electric Potential Energy:

100. (A) The electric potential energy stored in a capacitor is given by $U = \frac{1}{2}CV^2$.
(R) The work done in charging the capacitor from $0$ to $Q$ is equal to the energy stored in the capacitor.

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Category: Capacitor Configurations:

101. Three capacitors with capacitances 2 \$\mu F\$, 4 \$\mu F\$, and 6 \$\mu F\$ are connected in series across a 12 V battery. What is the charge stored on each capacitor?

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Category: Dielectrics and Electric Polarization

102. (A) When a dielectric slab is inserted between the plates of a parallel-plate capacitor, the electric field inside the dielectric reduces.
(R) The polarization charges induced on the surfaces of the dielectric produce an opposing electric field that partially cancels the external field.

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Category: Definition of capacitance

103. (A) The capacitance of a conductor is defined as the ratio of the charge given to it to the rise in its potential.
(R) Capacitance depends on the size and shape of the conductor and the surrounding medium, not on the charge or potential.

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Category: Dielectric constant of the material between the plates

104. A parallel plate capacitor has a capacitance of $C_0$ in vacuum. When a dielectric material is inserted between the plates, its capacitance becomes $2C_0$. What is the dielectric constant of the material?

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Category: Definition of capacitance

105. A conductor has a capacitance of $2 pF$. If it is charged to a potential of $500 V$, what is the magnitude of the charge on the conductor?

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Category: Capacitance of a Parallel-Plate Capacitor with Dielectric Slab

106. A parallel-plate capacitor ($A = 0.05 \, \text{m}^2$, $d = 8 \, \text{mm}$, $C_0 = 55.3 \, \text{pF}$) has a metallic slab ($K = \infty$) of thickness $t = 3 \, \text{mm}$ inserted. What is the new capacitance?

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Category: Dielectrics: materials that do not conduct electricity but can exhibit electric effects

107. If the electric field in vacuum is $E_0$ and the dielectric constant of the material placed in the field is $K = 4$, what is the electric field inside the dielectric?

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Category: Dielectrics:

108. A non-polar dielectric slab is placed in an external electric field $E_0$. What happens to the molecules of the dielectric?

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Category: Behavior of free electrons in conductors

109. Which of the following statements about free electrons in conductors is correct?

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Category: Properties of insulators

110. Which of the following statements about polar molecules is correct?

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Category: Capacitance of a Parallel-Plate Capacitor with Dielectric Slab

111. (A) The capacitance of a parallel-plate capacitor increases when a dielectric slab is inserted between the plates.
(R) The electric field inside the dielectric slab reduces due to polarization, leading to an increase in capacitance.

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Category: Properties of conductors

112. What is the formula defining the capacitance $C$ of a conductor when given charge $Q$ and potential $V$?

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Category: Polarization of Dielectrics:

113. Where do polarization charges appear in a dielectric slab placed in an electric field between capacitor plates?

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Category: Capacitors in parallel

114. A circuit has three parallel branches containing capacitors: the first branch has two $5 \mu F$ capacitors in series, the second has a single $10 \mu F$ capacitor, and the third has three $2 \mu F$ capacitors in series. Find the equivalent capacitance of the entire network.

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Category: Electric polarization of dielectrics

115. (A) When a dielectric material is placed in an electric field, it acquires a net dipole moment in the direction of the field.
(R) In polar dielectrics, the molecules align perfectly with the applied electric field without any thermal agitation.

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Category: Free and Bound Charges Inside a Conductor

116. What is the unit of capacitance?

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Category: Classification of materials into conductors and insulators

117. In metals, what are the charge carriers responsible for conducting electricity?

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Category: Conductors and Insulators

118. Which of the following is an example of an insulator?

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Category: Properties of insulators

119. What is the dielectric constant of a vacuum?

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Category: Electric Field and Force:

120. What is the expression for the force between the plates of a parallel-plate capacitor with charge $Q$, plate area $A$ and permittivity $\varepsilon_0$?

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Category: Electric polarization of dielectrics

121. (A) The dielectric strength of a material is the maximum electric field it can withstand without breakdown, and this value decreases with increasing temperature for polar dielectrics.
(R) In polar dielectrics, thermal agitation disrupts the alignment of dipoles, requiring a stronger external field to achieve the same level of polarization as temperature increases.

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Category: Dielectrics and Electric Polarization

122. Which of the following molecules has a permanent dipole moment?

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Category: Capacitance of a Parallel-Plate Capacitor with Dielectric Slab

123. A parallel-plate capacitor has plate area $A$ and separation $d$. Two dielectric slabs are inserted: one with $K_1 = 2$ and thickness $\frac{d}{4}$, and another with $K_2 = 4$ and thickness $\frac{d}{2}$. What is the effective capacitance?

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Category: Force between the Plates of a Charged Capacitor

124. (A) The force between the plates of a charged parallel-plate capacitor is given by $F = \frac{1}{2} \frac{Q^2}{\varepsilon_0 A}$, where $Q$ is the charge on each plate, $\varepsilon_0$ is the permittivity of free space, and $A$ is the area of each plate.
(R) The factor $\frac{1}{2}$ arises because the electric field exerting the force on one plate is due to only the other plate's charge.

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Category: Bound charges in insulators

125. (A) Bound charges appear on the surfaces of a dielectric when placed in an external electric field.
(R) Bound charges arise due to the polarization of the dielectric material, where the electric field causes displacement of positive and negative charges within the atoms or molecules.

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Category: Properties of insulators

126. What does dielectric strength measure?

127 / 564

Category: Combinations of Capacitors

127. Three capacitors with capacitances 2 $\mu F$, 3 $\mu F$, and 6 $\mu F$ are connected in series. What is the equivalent capacitance of the combination?

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Category: Capacitors in series

128. Two capacitors, $C_1 = 4 \text{ pF}$ and $C_2 = 8 \text{ pF}$, are connected in series to a $12 \text{ V}$ battery. What is the charge stored on each capacitor?

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Category: Capacitance:

129. Convert 5000 pF to microfarads ($\mu$F).

130 / 564

Category: Capacitance of an Isolated Spherical Conductor

130. What are the dimensions of capacitance?

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Category: Properties of insulators

131. A parallel-plate capacitor has a capacitance of $10 \mu F$ in air. If a dielectric slab with dielectric constant $K = 4$ is inserted between the plates, what will be the new capacitance if the capacitor remains connected to the battery?

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Category: Distance between the plates

132. A parallel plate capacitor has a capacitance of $10 \mu F$ when the distance between its plates is $1 mm$. If the distance between the plates is reduced to $0.5 mm$, what happens to the capacitance?

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Category: Effect of dielectric material on capacitance

133. If a metallic slab ($K = \infty$) fills the entire space between the plates of a capacitor, what is the capacitance?

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Category: Conductors and Insulators

134. In a metallic conductor, when an external electric field is applied, what is the primary mechanism of charge transportation?

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Category: Free and Bound Charges Inside a Conductor

135. In a metallic conductor, which of the following statements is true about free electrons and bound charges?

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Category: Definition of capacitance

136. Which of the following represents $1$ nanofarad?

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Category: Electric Field and Force:

137. A parallel-plate capacitor has charge $+Q$ on one plate and $-Q$ on the other. The plates are pulled apart to distance $d$, maintaining uniform electric field $E$. If the area of each plate is $A$ and the permittivity of free space is $\varepsilon_0$, what is the magnitude of force $F$ between the plates?

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Category: Dielectrics:

138. (A) The dielectric constant of a material is always greater than or equal to 1.
(R) The dielectric constant is defined as the ratio of the capacitance with dielectric to the capacitance in vacuum, and capacitance cannot decrease when a dielectric is introduced.

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Category: Capacitance:

139. What is the definition of capacitance?

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Category: Equivalent capacitance in series and parallel combinations

140. Three capacitors with capacitances 2 \mu F, 4 \mu F, and 6 \mu F are connected in series. What is the equivalent capacitance of the combination?

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Category: Dielectrics and Electric Polarization

141. A dielectric material has a dielectric strength of $5 \, \text{kV/mm}$. If the distance between the plates of a capacitor filled with this dielectric is $2 \, \text{mm}$, what is the maximum potential difference that can be applied before breakdown occurs?

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Category: Concept of conduction and polarization

142. A polar dielectric is subjected to an increasing electric field at a constant temperature. How does its polarization behave, and why?

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Category: Dielectrics and Electric Polarization

143. When a dielectric material is placed in an electric field, the resultant field inside the dielectric becomes:

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Category: Capacitance:

144. (A) The capacitance of a conductor depends on the charge given to it and the potential rise it induces.
(R) Capacitance is defined as $C = Q/V$, but it is an intrinsic property of the conductor and does not depend on $Q$ or $V$.

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Category: Definition of capacitance

145. Convert 1 nF into farads.

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Category: Dielectric constant of the material between the plates

146. If the relative permittivity $\varepsilon_r$ of a dielectric material is 5, what is its dielectric constant $K$?

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Category: Capacitance of a Conductor

147. What is the SI unit of capacitance?

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Category: Dielectric Strength:

148. If the dielectric strength of air at NTP is $3 kV/mm$, what is the maximum electric field it can tolerate without breakdown?

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Category: Capacitors in series

149. Three capacitors with capacitances $C_1 = 4\mu F$, $C_2 = 6\mu F$, and $C_3 = 12\mu F$ are connected in series across a potential difference of 120V. What is the maximum voltage that can be applied to the combination without exceeding the breakdown voltage of any capacitor, given their individual breakdown voltages are $V_{1max} = 50V$, $V_{2max} = 60V$, and $V_{3max} = 30V$ respectively?

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Category: Formula for capacitance of a spherical conductor

150. If the radius of an isolated spherical conductor is doubled while keeping all other factors constant, how does its capacitance change?

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Category: Dielectric constant of the material between the plates

151. The relative permittivity $\varepsilon_r$ of a certain dielectric material is 6. If the electric field inside the dielectric is observed to reduce to one-third of its value in vacuum when placed between the plates of a capacitor, what is the dielectric constant $K$ of the material?

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Category: Capacitance with Dielectric Slab Inserted

152. A parallel-plate capacitor has capacitance $C_0$ when air-filled. If a dielectric slab of constant $K = 5$ fills the entire space between the plates, what is the new capacitance?

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Category: Distance between the plates

153. (A) When a dielectric slab of thickness $t$ and dielectric constant $K$ is inserted between the plates of a parallel-plate capacitor connected to a battery, the potential difference across the plates decreases.
(R) The capacitance of the capacitor increases when a dielectric slab is inserted because the effective distance between the plates reduces.

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Category: Capacitor Configurations:

154. A parallel-plate capacitor has a plate area of 100 cm\textsuperscript{2}, plate separation of 2 mm, and is filled with air ($K = 1$). If a dielectric slab of thickness 1 mm and dielectric constant $K = 4$ is introduced between the plates, what is the new capacitance?

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Category: Dielectrics and Electric Polarization

155. (A) The dielectric constant of a material is always greater than or equal to 1.
(R) For vacuum, the dielectric constant is 1 by definition, and for all other materials, it increases due to polarization effects.

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Category: Dielectric strength

156. A parallel-plate capacitor has two dielectric layers: one with $K_1 = 3$ and thickness $d_1 = 0.2 \, \text{mm}$, and another with $K_2 = 5$ and thickness $d_2 = 0.3 \, \text{mm}$. If the dielectric strength of the second layer is $4 \times 10^6 \, \text{V/m}$, what is the maximum voltage that can be applied across the capacitor?

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Category: Capacitance with Dielectric Slab Inserted

157. A parallel-plate capacitor has plate area $A = 0.02 \text{ m}^2$ and plate separation $d = 0.005 \text{ m}$. The capacitance in vacuum is $C_0$. If a dielectric slab of thickness $t = 0.003 \text{ m}$ and dielectric constant $K = 4$ is inserted, what is the new capacitance $C$?

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Category: Capacitor Configurations:

158. (A) In a series combination of capacitors, the equivalent capacitance is less than the smallest individual capacitance in the combination.
(R) In a series combination, the potential differences across the capacitors are inversely proportional to their capacitances.

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Category: Equivalent capacitance in series and parallel combinations

159. In the circuit shown below (imagine figure not shown), three capacitors $C_1 = 6 \mu F$, $C_2 = 3 \mu F$, and $C_3 = 2 \mu F$ are connected as follows: $C_1$ in series with ($C_2$ parallel $C_3$) across 100V. What is the potential difference across $C_2$?

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Category: Capacitance of a Parallel-Plate Capacitor with Dielectric Slab

160. Two dielectric slabs ($K_1 = 2$, $t_1 = 2 \, \text{mm}$ and $K_2 = 3$, $t_2 = 3 \, \text{mm}$) fill the entire space between the plates of a parallel-plate capacitor ($A = 0.01 \, \text{m}^2$, $d = 5 \, \text{mm}$). If the charge on the plates is $Q = 10^{-7} \, \text{C}$, what is the potential difference $V$ across the capacitor?

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Category: Dielectrics and Electric Polarization

161. A parallel plate capacitor with a vacuum between its plates has a capacitance of $C_0$. When a dielectric slab of dielectric constant $K$ is inserted to completely fill the space between the plates, the capacitance becomes $C$. If the electric field without the dielectric is $E_0$ and with the dielectric is $E$, what is the relationship between $E_0$ and $E$?

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Category: Polarization of Dielectrics:

162. (A) When a dielectric slab is not connected to a battery and placed between the plates of a charged capacitor, the electric field inside the dielectric decreases compared to the external field.
(R) The polarisation charges induced on the faces of the dielectric produce an opposing electric field $E'$ that reduces the resultant field within the dielectric.

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Category: Effect of inserting dielectric material between plates

163. A parallel-plate capacitor has plate area $A$ and separation $d$. A dielectric slab of dielectric constant $K$ and thickness $t = \frac{3d}{4}$ is inserted between the plates. What is the new capacitance?

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Category: Factors affecting capacitance

164. If the distance between the plates of a parallel-plate capacitor is tripled while maintaining all other parameters constant, how does the capacitance change?

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Category: Concept of conduction and polarization

165. A dielectric slab is placed in a uniform electric field $E_0$. What happens to the net charge inside the slab?

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Category: Capacitance with Dielectric Slab Inserted

166. A parallel-plate capacitor has initial capacitance $C_0$. A metallic slab of thickness $t = 0.002 \text{ m}$ is inserted between the plates, reducing the effective separation from $d = 0.01 \text{ m}$. What is the new capacitance?

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Category: Capacitor Configurations:

167. Three capacitors of capacitances 2 $\mu$F, 4 $\mu$F, and 8 $\mu$F are connected in series. What is the equivalent capacitance of the combination?

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Category: Definition of capacitance

168. Which of the following factors does NOT affect the capacitance of a conductor?

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Category: Capacitors in series

169. (A) When three capacitors of capacitances $C_1$, $C_2$, and $C_3$ are connected in series to a voltage source $V$, the charge on each capacitor is equal to $q = C_{\text{eq}} V$, where $C_{\text{eq}}$ is the equivalent capacitance of the series combination.
(R) In a series combination of capacitors, the potential difference across each capacitor is inversely proportional to its capacitance, ensuring the same charge accumulates on all capacitors.

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Category: Capacitance:

170. A parallel-plate capacitor has plates of area $A$ and separation $d$. A dielectric slab of thickness $t$ ($t < d$) and dielectric constant $K$ is inserted between the plates. If the capacitor is charged to a potential difference $V$ and then disconnected from the battery, what is the ratio of the final to initial capacitance after inserting the slab?

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Category: Capacitance of a Parallel-Plate Capacitor with Dielectric Slab

171. A parallel-plate capacitor has a plate separation $d = 0.02 \, \text{m}$ and an initial potential difference $V_0 = 100 \, \text{V}$. A dielectric slab ($K = 3$) of thickness $t = 0.01 \, \text{m}$ is inserted. What is the new potential difference $V$?

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Category: Distance between the plates

172. For a parallel-plate capacitor with an initial potential difference of 1500 V, how does the potential difference change when a metal plate of thickness 0.01 m is inserted between plates initially 0.05 m apart?

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Category: Dielectrics:

173. A capacitor is designed to operate at a maximum potential difference of 500 V with a dielectric material of dielectric strength 10 kV/mm. What is the minimum thickness of the dielectric required to prevent breakdown?

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Category: Capacitor Configurations:

174. Two capacitors of capacitances 3 $\mu$F and 6 $\mu$F are connected in parallel. What is the equivalent capacitance of the combination?

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Category: Work done in charging the capacitor

175. (A) The energy stored in a fully charged capacitor is always half the work done by the battery during charging.
(R) During charging, the potential difference across the capacitor plates increases linearly with charge.

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Category: Properties of conductors

176. What are the charge-carriers responsible for electrical conduction in metals?

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Category: Factors affecting capacitance

177. What happens to the capacitance of a parallel-plate capacitor if the distance between the plates is reduced to half its original value?

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Category: Dependence of Capacitance on Various Factors

178. The capacitance of a parallel-plate capacitor increases when:

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Category: Area of the plates

179. For a parallel-plate capacitor with capacitance $C = 1.5 \times 10^{-6}$ F, plate separation $d = 2 \times 10^{-3}$ m, and permittivity of free space $\varepsilon_0 = 8.85 \times 10^{-12}$ F/m, what is the area of the plates?

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Category: Dielectrics: materials that do not conduct electricity but can exhibit electric effects

180. (A) When a dielectric material is placed in an electric field, its molecules develop a net dipole moment in the direction of the field.
(R) In polar dielectrics, the individual dipoles align with the applied electric field due to their intrinsic dipole moments.

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Category: Electric Field and Force:

181. What is the energy density of the electric field between the plates of a parallel-plate capacitor with an electric field strength of $E$?

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Category: Dielectric strength

182. A capacitor needs to store $10 pC$ charge at a voltage rating of $500 V$ using a dielectric with dielectric constant $K = 3$ and strength $10^7 V/m$. If the operating electric field is limited to $10\%$ of the dielectric strength, what minimum plate area is required? ($\varepsilon_0 = 8.85 \times 10^{-12} F/m$)

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Category: Polarization of Dielectrics:

183. When a non-polar dielectric is placed in an external electric field $E_0$, what happens to the centers of positive and negative charges within its molecules?

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Category: Units of capacitance

184. A capacitor has a charge of $8 \times 10^{-6}$ C when connected to a potential difference of 4 V. What is its capacitance?

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Category: Capacitors with dielectric material between plates

185. A parallel-plate capacitor has plates of area $A = 0.5 \, \text{m}^2$ separated by a distance $d = 10^{-3} \, \text{m}$. Two dielectric slabs of thicknesses $t_1 = 4 \times 10^{-4} \, \text{m}$ ($K_1 = 2$) and $t_2 = 6 \times 10^{-4} \, \text{m}$ ($K_2 = 4$) are inserted between the plates. What is the capacitance of the system?

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Category: Combinations of Capacitors

186. A capacitor of 4 $\mu F$ is charged to a potential difference of 50 V. What is the energy stored in the capacitor?

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Category: Behavior of free electrons in conductors

187. (A) In metals, the free electrons drift against the direction of an applied electric field.
(R) The residual positive ions in a conductor remain fixed and do not contribute to current flow.

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Category: Factors affecting capacitance

188. (A) The capacitance of a parallel-plate capacitor increases when a dielectric material is inserted between the plates.
(R) The dielectric material reduces the electric field between the plates, leading to an increase in capacitance.

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Category: Free and Bound Charges Inside a Conductor

189. In a conductor, what are free charges?

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Category: Capacitor Configurations:

190. (A) When two identical capacitors are charged to different potentials and then connected in parallel, the total energy stored in the system decreases.
(R) The redistribution of charge between the capacitors leads to energy dissipation as heat due to transient currents.

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Category: Combinations of Capacitors

191. Two capacitors of 5 $\mu F$ and 10 $\mu F$ are connected in parallel. What is their equivalent capacitance?

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Category: Equivalent capacitance in series and parallel combinations

192. A capacitor of 4 $\mu$F is connected in series with a parallel combination of two capacitors, each of 6 $\mu$F. What is the equivalent capacitance of the entire circuit?

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Category: Force between the Plates of a Charged Capacitor

193. Two parallel conducting plates carry charges $+Q$ and $-Q$. The electric field just outside one plate due to itself is $E_1$ and due to the other plate is $E_2$. What is the net force per unit area experienced by either plate?

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Category: Capacitors with dielectric material between plates

194. (A) When a dielectric slab is inserted between the plates of a parallel-plate capacitor without disconnecting the battery, the energy stored in the capacitor increases.

(R) The insertion of a dielectric slab increases the capacitance of the capacitor, and since the potential difference remains constant due to the connected battery, the energy stored ($U = \frac{1}{2}CV^2$) increases.

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Category: Capacitance:

195. If the potential difference across a capacitor is doubled while its capacitance remains constant, what happens to the charge stored in the capacitor?

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Category: Applications and Special Cases

196. A parallel plate capacitor has plates of area $A$ and separation $d$. It is filled with two dielectric slabs of thicknesses $t_1$ and $t_2$ ($t_1 + t_2 = d$) and dielectric constants $K_1 = 4$ and $K_2 = 2$, respectively. What is the capacitance of this system?

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Category: Dielectric strength

197. (A) The dielectric strength of a material is the maximum electric field it can tolerate without breakdown.
(R) Dielectric strength ensures that the material does not conduct electricity under normal operating conditions.

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Category: Units of capacitance

198. Which of the following represents the correct dimensional formula for capacitance?

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Category: Classification of materials into conductors and insulators

199. (A) In an insulator, when an external electric field is applied, induced charges appear on its surface.

(R) Insulators have tightly bound electrons that cannot move freely but can get slightly displaced under an electric field, resulting in induced surface charges.

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Category: Relation between charge, potential, and capacitance

200. The capacitance $C$ of a capacitor is defined as the ratio of:

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Category: Electric Potential Energy:

201. (A) The energy stored in a capacitor is given by $U = \frac{1}{2}CV^2$ because
(R) the work done to charge the capacitor from 0 to $Q$ is $\frac{1}{2}\frac{Q^2}{C}$, and since $Q=CV$, this work becomes $\frac{1}{2}CV^2$.

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Category: Effect of dielectric material on capacitance

202. What is the capacitance of a parallel-plate capacitor with area $A$, plate separation $d$, and dielectric constant $K$?

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Category: Capacitance with Dielectric Slab Inserted

203. A parallel-plate capacitor has plate area $A = 0.5 \text{ m}^2$ and separation $d = 0.01 \text{ m}$. If a dielectric slab of thickness $t = 0.005 \text{ m}$ and dielectric constant $K = 4$ is inserted between the plates, what is the new capacitance?

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Category: Dielectrics:

204. When a non-polar dielectric material is placed in an external electric field, what happens at the molecular level?

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Category: Capacitors in parallel

205. (A) When three capacitors are connected in parallel, the equivalent capacitance is always greater than any individual capacitor's capacitance.
(R) The equivalent capacitance of capacitors in parallel is given by the sum of their individual capacitances.

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Category: Concept of conduction and polarization

206. A non-polar dielectric slab is placed in a uniform electric field $E_0$. What happens to the dipole moments of its molecules and the net charge distribution inside the slab?

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Category: Free and Bound Charges Inside a Conductor

207. In a conductor at equilibrium, what is the net electric field inside the material?

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Category: Classification of materials into conductors and insulators

208. Which of the following materials is a conductor?

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Category: Permittivity and dielectric constant

209. A parallel-plate capacitor has a charge $Q$ and plate area $A$. A dielectric slab of dielectric constant $K = 5$ and thickness equal to the plate separation $d$ is inserted into the capacitor. What fraction of the original charge $Q$ is induced on the dielectric surfaces?

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Category: Work done in charging the capacitor

210. Two identical capacitors each of capacitance $C$ are connected in series and charged to a potential difference $V$. What is the total energy stored in the combination?

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Category: Dependence of Capacitance on Various Factors

211. If the distance between the plates of a parallel-plate capacitor is doubled, its capacitance becomes:

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Category: Dielectric strength

212. A parallel-plate capacitor uses a dielectric material with dielectric constant $4$ and dielectric strength $5 \times 10^6 V/m$. For safety, the applied electric field should not exceed $20\%$ of the dielectric strength. What is the maximum voltage that can be applied across a plate separation of $0.1 mm$?

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Category: Area of the plates

213. A parallel-plate capacitor has a capacitance of 10 \, \text{nF} when the plate area is 50 \, \text{cm}^2 and the plate separation is 1 \, \text{mm}. What would be the new capacitance if the plate area is doubled while keeping the same separation and dielectric material?

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Category: Dependence of Capacitance on Various Factors

214. A parallel-plate air capacitor has capacitance $C$. If the distance between the plates is doubled and a dielectric slab of dielectric constant $K = 2$ is inserted filling the entire space between the plates, what will be the new capacitance?

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Category: Classification of materials into conductors and insulators

215. (A) Metals are good conductors of electricity.
(R) In metals, the free electrons move against the direction of an external electric field.

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Category: Capacitance:

216. (A) The capacitance of a conductor depends on the amount of charge given to it.
(R) Capacitance is defined as the ratio of charge to potential difference.

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Category: Work done in charging the capacitor

217. (A) The work done in charging a capacitor is stored as electric potential energy.
(R) The total work done to charge a capacitor from an uncharged state to final charge $Q$ is given by $\frac{1}{2} \frac{Q^2}{C}$.

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Category: Classification of materials into conductors and insulators

218. What happens when an external electric field is applied across an insulator?

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Category: Formula for capacitance of a spherical conductor

219. If a spherical conductor is placed in a medium of dielectric constant $K$, how does its capacitance change compared to when it is in vacuum?

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Category: Permittivity and dielectric constant

220. (A) The dielectric constant of a conductor is infinite.
(R) The electric field inside a conductor is zero.

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Category: Formula for capacitance of a spherical conductor

221. Two spherical conductors have radii in the ratio 2:3. If the capacitance of the first conductor is $100 \, \mu F$ when placed in vacuum, what is the capacitance of the second conductor when placed in a medium with $\varepsilon = 2 \varepsilon_0$?

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Category: Properties of conductors

222. (A) The capacitance of a conductor increases when it is placed near another earthed conductor.
(R) Bringing an earthed conductor close to a charged conductor reduces its potential, thereby increasing its capacitance.

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Category: Distance between the plates

223. (A) The capacitance of a parallel-plate capacitor increases when the distance between its plates is decreased.
(R) The capacitance of a parallel-plate capacitor is inversely proportional to the distance between its plates.

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Category: Concept of conduction and polarization

224. Which of the following molecules has a permanent dipole moment?

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Category: Distance between the plates

225. The capacitance $C$ of a parallel plate capacitor is related to the distance $d$ between the plates by which mathematical relationship?

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Category: Energy stored in the electric field of a charged capacitor

226. A parallel-plate capacitor has a capacitance of $10 \mu F$ and is charged to a potential difference of 200 V. What is the energy stored in the capacitor?

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Category: Capacitance:

227. A metallic sphere of radius $R$ has a capacitance $C$ when isolated in free space. If another identical metallic sphere is brought near it and connected to the ground, how does the capacitance of the first sphere change?

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Category: Effect of inserting dielectric material between plates

228. (A) When a dielectric slab is inserted between the plates of a charged capacitor (with battery disconnected), the potential difference across the plates decreases.

(R) The electric field inside the dielectric weakens due to the opposing field created by induced polarization charges.

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Category: Formula for capacitance of a spherical conductor

229. What is the capacitance of an isolated spherical conductor of radius $a$ placed in vacuum?

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Category: Dielectrics:

230. A parallel-plate capacitor is filled with a dielectric material of dielectric constant $K$. If the electric field between the plates in the absence of dielectric is $E_0$, what is the electric field inside the dielectric when it is introduced?

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Category: Capacitance of a Parallel-Plate Capacitor with Dielectric Slab

231. A parallel-plate capacitor has plate area $A$ and separation $d$. A dielectric slab of thickness $\frac{d}{2}$ and dielectric constant $K = 4$ is inserted between the plates. What is the new capacitance?

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Category: Energy stored in the electric field of a charged capacitor

232. A conducting sphere of radius $a$ carries a charge $Q$. What is the electric energy density at a point just outside the surface of the sphere?

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Category: Work done in charging the capacitor

233. A capacitor of capacitance $C$ is charged to a potential difference $V$. What is the energy stored in the capacitor?

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Category: Force between the Plates of a Charged Capacitor

234. If the work done in separating the plates of a capacitor from near $0$ to distance $d$ is $W = F d$, what does this work represent?

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Category: Energy Density:

235. (A) The energy density in a parallel-plate capacitor is directly proportional to the square of the electric field between the plates.
(R) The energy stored in a capacitor is given by $U = \frac{1}{2} C V^2$, and for a parallel-plate capacitor, $C = \frac{\varepsilon_0 A}{d}$ and $V = E d$.

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Category: Electric Potential Energy:

236. A conducting sphere of radius $a$ has a total charge $Q$. If the sphere is now connected to an identical uncharged sphere, what will be the final electrostatic potential energy stored in the system? Assume no loss of energy.

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Category: Dielectric Strength:

237. What minimum volume of air (dielectric strength 3 kV/mm) is needed to store 0.1 J of energy at 95\% of breakdown voltage, considering parallel plates with 2 mm separation?

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Category: Capacitance of a Parallel-Plate Capacitor with Dielectric Slab

238. A parallel-plate capacitor has plate area $A = 0.02 \, \text{m}^2$, plate separation $d = 5 \, \text{mm}$, and is charged to $Q = 10^{-6} \, \text{C}$. A dielectric slab ($K = 4$) of thickness $t = 3 \, \text{mm}$ is inserted. What is the capacitance?

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Category: Force between the Plates of a Charged Capacitor

239. (A) The force between the plates of a parallel-plate capacitor is $\frac{Q^2}{2 A \epsilon_0}$.
(R) The electric field acting on one plate is $\frac{E}{2}$ because each plate contributes equally to the total field $E$.

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Category: Force between the Plates of a Charged Capacitor

240. A parallel-plate capacitor has plates of area $A$ separated by distance $d$. If the electric field between the plates is $E$, what is the total work done in increasing the separation from $d$ to $2d$ while keeping the charge constant?

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Category: Capacitors in parallel

241. Three capacitors with capacitances 5 $\mu$F, 10 $\mu$F, and 15 $\mu$F are connected in parallel across a 20 V battery. What is the charge on the 10 $\mu$F capacitor?

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Category: Electric Potential Energy:

242. Two capacitors with capacitances $C_1$ and $C_2$ at potentials $V_1$ and $V_2$ respectively are connected. What will be their common potential $V$ after connection?

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Category: Energy density in capacitors

243. A capacitor has a capacitance of $10 \, \mu\text{F}$ and is charged to a potential difference of $100 \, \text{V}$. What is the energy stored in the capacitor?

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Category: Behavior of free electrons in conductors

244. What determines the electrical conductivity of a solid substance?

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Category: Effect of inserting dielectric material between plates

245. A parallel-plate capacitor with capacitance $C_0$ is charged to a potential difference $V_0$ and then disconnected from the battery. A dielectric slab of dielectric constant $K$ is fully inserted between the plates. What is the change in the energy stored in the capacitor?

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Category: Energy stored in the electric field of a charged capacitor

246. A capacitor of capacitance $C$ is charged to a potential difference $V$. What percentage of the total energy supplied by the battery is lost as heat during the charging process?

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Category: Factors affecting capacitance

247. A parallel-plate capacitor has its plate area doubled while keeping all other factors constant. How does the capacitance change?

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Category: Dielectric constant of the material between the plates

248. A parallel plate capacitor has an area $A$ and separation $d$. If the space between the plates is filled with a dielectric of constant $K = 4$, what is the new capacitance?

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Category: Dielectrics:

249. A parallel plate capacitor has a capacitance of $5 \mu F$ in vacuum. If the space between the plates is completely filled with a dielectric material having dielectric constant $K = 3$, what will be the new capacitance?

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Category: Properties of insulators

250. Which of the following materials is an example of an insulator?

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Category: Capacitance of a Parallel-Plate Capacitor with Dielectric Slab

251. A parallel-plate capacitor has plate area $A$ and separation $d$. A metallic slab of thickness $\frac{d}{3}$ is inserted between the plates. What is the new capacitance?

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Category: Relation between charge, potential, and capacitance

252. For a parallel-plate capacitor with plate area $A$, distance $d$, and dielectric constant $K$, the capacitance $C$ is given by:

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Category: Dependence of Capacitance on Various Factors

253. A parallel-plate capacitor has two dielectrics of constants $K_1$ and $K_2$ filling equal parts of the plate area. If the total capacitance is $C$, what will be the new capacitance if the area covered by $K_1$ is doubled and that of $K_2$ is halved?

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Category: Dielectric Strength:

254. A capacitor has two dielectric layers: glass (K = 7, thickness 0.3 mm) and rubber (K = 3, thickness 0.2 mm). If rubber breaks down at 15 kV/mm, what is the maximum safe operating voltage?

255 / 564

Category: Energy Stored in a Charged Capacitor

255. A capacitor $C_1 = 4 \mu F$ is charged to $V_1 = 300$ V and then connected to an uncharged capacitor $C_2 = 2 \mu F$. What is the energy lost when the capacitors are connected?

256 / 564

Category: Units of capacitance

256. How many farads are there in 1 microfarad ($\mu\text{F}$)?

257 / 564

Category: Relation between charge, potential, and capacitance

257. (A) The capacitance of a parallel-plate capacitor increases when a dielectric slab is introduced between its plates.
(R) The introduction of a dielectric slab reduces the electric field between the plates, thereby decreasing the potential difference for the same charge.

258 / 564

Category: Applications and Special Cases

258. Two dielectric slabs of thicknesses $t_1 = d/3$ and $t_2 = 2d/3$, with dielectric constants $K_1 = 2$ and $K_2 = 3$ respectively, fill the space between the plates of a parallel plate capacitor of area $A$. What is the overall capacitance?

259 / 564

Category: Bound charges in insulators

259. A parallel-plate capacitor has a capacitance of $C_0$ in vacuum. When a dielectric slab of dielectric constant $K = 5$ is inserted between the plates, what is the new capacitance?

260 / 564

Category: Combinations of Capacitors

260. (A) In a series combination of capacitors, the equivalent capacitance is less than the smallest individual capacitance.
(R) The total charge on each capacitor in series is the same.

261 / 564

Category: Force between the Plates of a Charged Capacitor

261. A parallel-plate capacitor has plates with area $A$ and charge $Q$ on each plate. What is the magnitude of the force between the plates if the distance between them is small compared to their linear dimensions?

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Category: Energy stored in the electric field of a charged capacitor

262. How much charge must be stored on a capacitor with capacitance $5 \mu F$ so that it stores an energy of $0.025 J$?

263 / 564

Category: Classification of materials into conductors and insulators

263. Which of the following is an insulator?

264 / 564

Category: Dielectric Strength:

264. (A) The dielectric strength of a material is the maximum electric field it can tolerate without breakdown, thus higher dielectric strength allows for higher voltage ratings in capacitors.
(R) Dielectric strength determines the minimum potential gradient required to puncture the dielectric, and using a material with high dielectric strength ensures that the capacitor can operate safely at higher voltages without breakdown.

265 / 564

Category: Dielectric Strength:

265. In what units is dielectric strength commonly measured?

266 / 564

Category: Equivalent capacitance in series and parallel combinations

266. (A) When three capacitors of capacitances $C_1$, $C_2$, and $C_3$ are connected in series, the equivalent capacitance is always less than the smallest individual capacitance in the combination.
(R) In a series combination, the potential difference across each capacitor is inversely proportional to its capacitance, resulting in a reduced overall storage capacity.

267 / 564

Category: Dielectrics: materials that do not conduct electricity but can exhibit electric effects

267. What is the dielectric constant of a material if the capacitance of a capacitor filled with the material is $5 \mu F$ and its capacitance in vacuum is $2 \mu F$?

268 / 564

Category: Electric Field and Force:

268. A parallel-plate capacitor with plate area $A$ and charge $Q$ is gradually pulled apart to a distance $d$. If the work done in this process is stored as electrostatic potential energy, what is the force between the plates?

269 / 564

Category: Capacitors in series

269. (A) The equivalent capacitance of three identical capacitors connected in series is less than the individual capacitance of any one of them.
(R) In a series combination, the reciprocal of the equivalent capacitance is equal to the sum of the reciprocals of the individual capacitances.

270 / 564

Category: Dielectrics:

270. Which of the following molecules is polar and thus has a permanent dipole moment?

271 / 564

Category: Electric Field and Force:

271. What is the energy density formula for the electric field between capacitor plates?

272 / 564

Category: Effect of inserting dielectric material between plates

272. A parallel-plate capacitor with plate area $A$ and separation $d$ is charged to a potential difference $V_0$ and then disconnected from the battery. A dielectric slab of dielectric constant $K$ and thickness $t = \frac{d}{2}$ is inserted between the plates. What is the new potential difference across the capacitor?

273 / 564

Category: Energy density in capacitors

273. Two capacitors store the same amount of energy. Capacitor A has twice the voltage but half the capacitance of capacitor B. How do their energy densities compare?

274 / 564

Category: Formula for capacitance of a spherical conductor

274. A spherical conductor has a radius of $5$ cm. Calculate its capacitance in air ($\epsilon_0 = 8.85 \times 10^{-12}$ F/m).

275 / 564

Category: Combinations of Capacitors

275. Four identical capacitors, each of capacitance 5 \mu F, are connected in parallel and charged to a potential difference of 10 V. What is the total energy stored in the combination?

276 / 564

Category: Properties of conductors

276. In an electrolytic conductor, the current density $J$ is due to the motion of both positive and negative ions. If the number density of positive ions is $n_+$, their charge is $+e$, and their drift velocity is $v_+$, while for negative ions, these quantities are $n_-$, $-e$, and $v_-$ respectively, what is the total current density $J$?

277 / 564

Category: Electric polarization of dielectrics

277. (A) When a dielectric slab is placed between the plates of a charged capacitor (not connected to a battery), the electric field inside the dielectric decreases.
(R) The induced dipole moment in the dielectric produces an internal electric field that opposes the external field.

278 / 564

Category: Capacitors in parallel

278. If three capacitors of 3 $\mu$F, 6 $\mu$F, and 9 $\mu$F are connected in parallel to a battery, what is the potential difference across each capacitor?

279 / 564

Category: Permittivity and dielectric constant

279. What is the induced charge $Q'$ on the surfaces of a dielectric slab when placed between the plates of a capacitor carrying charge $Q$ and having dielectric constant $K$?

280 / 564

Category: Work done in charging the capacitor

280. (A) The energy stored in a capacitor is $\frac{1}{2} CV^2$.
(R) The work done by the battery in charging the capacitor is entirely converted into potential energy stored in the capacitor.

281 / 564

Category: Electric polarization of dielectrics

281. A parallel-plate capacitor uses a dielectric with a strength of 10 kV/mm. The distance between the plates is 5 mm. What is the maximum potential difference ($V_{max}$) that can be applied without causing dielectric breakdown?

282 / 564

Category: Dielectrics and Electric Polarization

282. What is the dielectric constant $K$ of a material if the capacitance of a capacitor filled with this material is $120 \mu F$, while its capacitance in vacuum is $30 \mu F$?

283 / 564

Category: Capacitance:

283. Which of the following is the SI unit of capacitance?

284 / 564

Category: Dielectric constant of the material between the plates

284. Two parallel-plate capacitors $C_1$ and $C_2$ are connected in series. $C_1$ has a dielectric with $K_1 = 2$ and thickness $d_1 = 2 \, \text{mm}$, while $C_2$ has a dielectric with $K_2 = 4$ and thickness $d_2 = 1 \, \text{mm}$. Both have the same plate area $A = 0.2 \, \text{m}^2$. What is the effective dielectric constant $K_{\text{eff}}$ for the equivalent series capacitor?

285 / 564

Category: Dielectrics: materials that do not conduct electricity but can exhibit electric effects

285. What happens to the electric field inside a dielectric material placed in an external electric field?

286 / 564

Category: Capacitance of an Isolated Spherical Conductor

286. An isolated spherical conductor of radius $R$ placed in vacuum has a capacitance $C$. If the same conductor is immersed in a medium with dielectric constant $K = 4$, what will be its new capacitance?

287 / 564

Category: Capacitance with Dielectric Slab Inserted

287. A parallel-plate capacitor has plate area $A = 0.05 \text{ m}^2$ and plate separation $d = 0.01 \text{ m}$. Two dielectric slabs of equal thickness $t_1 = t_2 = 0.004 \text{ m}$ and dielectric constants $K_1 = 2$ and $K_2 = 5$ are inserted between the plates. What is the new capacitance?

288 / 564

Category: Capacitance:

288. A parallel-plate capacitor with plate area $A$ and separation $d$ is filled with a dielectric of constant $K$. If the dielectric slab is pulled out halfway while maintaining the charge on the plates constant, what happens to the energy stored in the capacitor?

289 / 564

Category: Dielectric Strength:

289. (A) The dielectric strength of a material limits the maximum voltage that can be applied across a capacitor without causing breakdown.
(R) When the electric field exceeds the dielectric strength, free electrons are generated in the dielectric, leading to its breakdown.

290 / 564

Category: Capacitance with Dielectric Slab Inserted

290. A parallel-plate capacitor has plate area $A = 0.03 \text{ m}^2$ and plate separation $d = 0.006 \text{ m}$. A metallic slab of thickness $t = 0.002 \text{ m}$ is inserted between the plates. What is the new capacitance? ($\varepsilon_0 = 8.85 \times 10^{-12} \text{ F/m}$)

291 / 564

Category: Dielectrics and Electric Polarization

291. (A) The electric field inside a dielectric slab placed in an external electric field is always less than the external field.
(R) The polarization charges induced on the surfaces of the dielectric produce an opposing electric field that reduces the net field inside the dielectric.

292 / 564

Category: Concept of conduction and polarization

292. (A) In a polar dielectric, the alignment of dipoles in an external electric field is always perfect regardless of temperature.
(R) Thermal agitation opposes the alignment of dipoles in a polar dielectric.

293 / 564

Category: Properties of conductors

293. (A) The free electrons in a conductor are bound to the conductor as a whole and cannot escape from its surface without external energy.
(R) Free electrons in a conductor have practically no affinity with their parent atoms.

294 / 564

Category: Energy density in capacitors

294. (A) The energy density in a capacitor is directly proportional to the square of the electric field.
(R) The energy stored per unit volume in an electric field is given by $u = \frac{1}{2} \varepsilon_0 E^2$.

295 / 564

Category: Classification of materials into conductors and insulators

295. Which of the following materials has the highest number of free electrons at room temperature?

296 / 564

Category: Electric polarization of dielectrics

296. If a dielectric slab is inserted between the plates of a charged capacitor (not connected to a battery), what happens to the potential difference across the plates?

297 / 564

Category: Effect of dielectric material on capacitance

297. A parallel-plate capacitor has plate area $A = 100 \, \text{cm}^2$, plate separation $d = 5 \, \text{mm}$, and is charged to a potential difference of $V_0 = 10 \, \text{V}$. A dielectric slab of thickness $t = 3 \, \text{mm}$ and dielectric constant $K = 4$ is inserted between the plates. What is the new capacitance of the capacitor?

298 / 564

Category: Capacitors in series

298. A 2μF and a 4μF capacitor are connected in series and charged to a total energy of 0.36J. What is the charge stored on each capacitor?

299 / 564

Category: Dielectric constant of the material between the plates

299. (A) The dielectric constant (\$K\$) of a conductor is infinity.
(R) The electric field inside a conductor is zero.

300 / 564

Category: Concept of conduction and polarization

300. What causes the polarization of a non-polar dielectric in an external electric field?

301 / 564

Category: Capacitors in parallel

301. Three capacitors $C_1 = 2 \mu F$, $C_2 = 4 \mu F$, and $C_3 = 6 \mu F$ are connected in parallel to a battery of 30 V. What is the ratio of charges stored on $C_1$ to $C_3$?

302 / 564

Category: Dielectrics:

302. (A) When a dielectric material is placed in an electric field, it acquires a net dipole moment in the direction of the field.

(R) In polar dielectrics, molecules align in the direction of the external electric field due to thermal agitation.

303 / 564

Category: Bound charges in insulators

303. A dielectric slab with dielectric constant $K = 3$ is inserted between the plates of a parallel-plate capacitor having charge $Q$ on its plates. What is the magnitude of the bound charge induced on one surface of the dielectric slab?

304 / 564

Category: Capacitance of a Conductor

304. Two identical spherical conductors, each of capacitance 1 pF in isolation, are brought close to each other without touching. How does the capacitance of each conductor change?

305 / 564

Category: Conductors and Insulators

305. A parallel-plate capacitor has a capacitance of $C_0$ in vacuum. If it is filled with a dielectric material of dielectric constant $K = 4$, what will be its new capacitance?

306 / 564

Category: Capacitance of an Isolated Spherical Conductor

306. What is the SI unit of the permittivity of free space, $\epsilon_0$?

307 / 564

Category: Dielectric constant of the material between the plates

307. What is the value of dielectric constant (K) for vacuum?

308 / 564

Category: Area of the plates

308. If the electric field between the plates of a parallel-plate capacitor is $200 \, \text{N-C}^{-1}$, what is the charge density on one of its plates? (Given $\varepsilon_0 = 8.85 \times 10^{-12} \, \text{C}^2 \, \text{N}^{-1} \, \text{m}^{-2}$)

309 / 564

Category: Factors affecting capacitance

309. (A) Introducing a metal plate of thickness $t = \frac{d}{2}$ between the plates of a capacitor doubles its capacitance.
(R) A metal plate reduces the effective distance between the capacitor plates, resulting in increased capacitance.

310 / 564

Category: Bound charges in insulators

310. A point charge $q$ is placed at the center of a dielectric sphere of radius $R$ and dielectric constant $K$. What is the ratio of the free charge to the total charge (free plus bound) at any point on the surface of the sphere?

311 / 564

Category: Permittivity and dielectric constant

311. A charge $Q$ is placed on the plates of a parallel-plate capacitor with a dielectric of constant $K = 3$. What is the induced charge on the surface of the dielectric?

312 / 564

Category: Energy density in capacitors

312. What should be the capacitance of a capacitor to store $0.5 \, \text{J}$ of energy at a potential difference of $200 \, \text{V}$?

313 / 564

Category: Formula for capacitance of a spherical conductor

313. (A) The capacitance of a spherical conductor increases when it is placed in a medium with higher dielectric constant.
(R) The capacitance $C$ of a spherical conductor is given by $C = 4 \pi \epsilon_0 K a$, where $K$ is the dielectric constant of the medium.

314 / 564

Category: Capacitance with Dielectric Slab Inserted

314. A parallel-plate capacitor with plate area $A = 0.5 \, \text{m}^2$ and separation $d = 4 \, \text{mm}$ is connected to a $200 \, \text{V}$ battery. A dielectric slab ($K = 5$) of thickness $t = 2 \, \text{mm}$ is inserted between the plates while the battery remains connected. What is the additional charge supplied by the battery?

315 / 564

Category: Effect of inserting dielectric material between plates

315. When a dielectric slab with dielectric constant $K$ is inserted between the plates of a parallel-plate capacitor while the battery remains connected, what happens to the capacitance?

316 / 564

Category: Capacitors in series

316. Three capacitors with capacitances $C_1 = 2 \text{ pF}$, $C_2 = 3 \text{ pF}$, and $C_3 = 6 \text{ pF}$ are connected in series. What is the equivalent capacitance of the combination?

317 / 564

Category: Relation between charge, potential, and capacitance

317. A parallel-plate capacitor with a capacitance of $5 \, \mu F$ is charged to a potential difference of $10 \, V$. What is the charge stored on the plates?

318 / 564

Category: Conductors and Insulators

318. (A) Metals are good conductors of electricity because they have a large number of free electrons.
(R) In metals, the valence electrons are loosely bound to their atoms and can move freely throughout the material.

319 / 564

Category: Applications and Special Cases

319. A parallel plate capacitor has plate area $A$ and separation $d$. A thin metallic slab of negligible thickness ($t \approx 0$) is introduced between the plates. What happens to the capacitance?

320 / 564

Category: Force between the Plates of a Charged Capacitor

320. In a parallel-plate capacitor, if the surface charge density is $\sigma$, what is the electric field ($E$) between the plates?

321 / 564

Category: Applications and Special Cases

321. (A) If a dielectric slab of thickness $t = \frac{d}{2}$ and dielectric constant $K$ is inserted between the plates of a parallel plate capacitor with initial capacitance $C_0$, the new capacitance becomes $\frac{2K C_0}{K + 1}$.
(R) The equivalent capacitance when two capacitors with capacitances $C_1$ and $C_2$ are connected in series is given by $\frac{C_1 C_2}{C_1 + C_2}$.

322 / 564

Category: Capacitors in parallel

322. Three capacitors of $C_1 = 4 \mu F$, $C_2 = 5 \mu F$, and $C_3 = 6 \mu F$ are connected in parallel across a 12 V battery. What is the equivalent capacitance of the combination?

323 / 564

Category: Dielectrics:

323. What is the dielectric constant $K$ of a material if the capacitance of a capacitor increases from $C_0 = 10 \mu F$ to $C = 30 \mu F$ when filled with the dielectric?

324 / 564

Category: Dielectrics and Electric Polarization

324. A parallel-plate capacitor with vacuum between its plates has a capacitance of $C_0$. When a dielectric material with dielectric constant $K = 4$ is inserted, what is the new capacitance?

325 / 564

Category: Properties of conductors

325. In electrolytic conductors, the charge carriers are:

326 / 564

Category: Electric polarization of dielectrics

326. A non-polar dielectric slab is placed in a uniform electric field $E_0$. What happens to the dipole moment of its molecules?

327 / 564

Category: Energy Stored in a Charged Capacitor

327. A parallel-plate capacitor has a capacitance of 500 pF and is charged to a potential difference of 300 V. The plates are separated by a distance of 2 mm. What is the energy density of the electric field between the plates?

328 / 564

Category: Capacitors in series

328. Three capacitors with capacitances 4 $\mu$F, 6 $\mu$F, and 12 $\mu$F are connected in series. What is the equivalent capacitance of the combination?

329 / 564

Category: Equivalent capacitance in series and parallel combinations

329. Three capacitors $C_1 = 2 \mu F$, $C_2 = 4 \mu F$, and $C_3 = 6 \mu F$ are connected such that $C_1$ is in series with the parallel combination of $C_2$ and $C_3$. If a potential difference of 120V is applied across the combination, what is the total energy stored in the system?

330 / 564

Category: Equivalent capacitance in series and parallel combinations

330. (A) The equivalent capacitance of two capacitors connected in series is always less than the smallest individual capacitor.
(R) In a series combination, the reciprocal of the equivalent capacitance equals the sum of the reciprocals of the individual capacitances.

331 / 564

Category: Area of the plates

331. A parallel-plate air-capacitor has plates with an area of $0.40 \, \text{m}^2$ and a separation of $0.02 \, \text{m}$ between them. What is its capacitance? (Given $\varepsilon_0 = 8.85 \times 10^{-12} \, \text{F m}^{-1}$)

332 / 564

Category: Properties of conductors

332. A spherical conductor of radius $R$ is charged to a potential $V$. What is the capacitance $C$ of the conductor if it is placed in a medium with permittivity $\epsilon$?

333 / 564

Category: Behavior of free electrons in conductors

333. Which statement correctly distinguishes between metallic conductors and electrolytic conductors based on charge carriers?

334 / 564

Category: Capacitance of a Conductor

334. An isolated spherical conductor has a capacitance $C$ in air. If it is placed in a medium with dielectric constant $K = 3$, what will be its new capacitance?

335 / 564

Category: Free and Bound Charges Inside a Conductor

335. Which of the following best explains why insulators do not conduct electricity easily?

336 / 564

Category: Effect of dielectric material on capacitance

336. (A) Inserting a dielectric slab of thickness $t$ and dielectric constant $K$ between the plates of a parallel-plate capacitor increases its capacitance.
(R) The electric field inside the dielectric reduces to $\frac{E_0}{K}$, thereby decreasing the effective potential difference across the plates.

337 / 564

Category: Capacitance of a Conductor

337. (A) The capacitance of a spherical conductor increases if its radius is increased.
(R) The capacitance of an isolated spherical conductor is given by $C = 4 \pi \epsilon_0 a$, where $a$ is the radius.

338 / 564

Category: Dielectric Strength:

338. A parallel-plate capacitor with a mica dielectric ($K$ = 5) has plates of area 0.02 $m^2$ separated by 0.5 mm. If mica's dielectric strength is 10$^7$ V/m, what is the maximum charge that can be stored without breakdown?

339 / 564

Category: Applications and Special Cases

339. A parallel plate capacitor has a plate area $A$ and separation $d$. A dielectric slab of thickness $t = d/2$ and dielectric constant $K = 4$ is inserted between the plates. What is the new capacitance?

340 / 564

Category: Effect of dielectric material on capacitance

340. (A) The effective electric field inside a dielectric slab inserted between the plates of a parallel-plate capacitor is reduced compared to the external field.
(R) The polarization of the dielectric creates an internal electric field opposite to the applied field.

341 / 564

Category: Equivalent capacitance in series and parallel combinations

341. (A) The equivalent capacitance of two 4 $\mu$F capacitors connected in series is 2 $\mu$F.
(R) In a series combination, the equivalent capacitance is given by $C = \frac{C_1 C_2}{C_1 + C_2}$.

342 / 564

Category: Effect of dielectric material on capacitance

342. A parallel-plate capacitor with plate charge $Q = 1 \, \mu\text{C}$ and plate area $A = 50 \, \text{cm}^2$ has a dielectric slab ($K = 2$) filling half the distance between the plates. What is the electric field inside the dielectric?

343 / 564

Category: Properties of insulators

343. (A) The dielectric constant of water is higher than that of glass because water molecules are polar while glass molecules are non-polar.
(R) Polar molecules have an intrinsic dipole moment which enhances the dielectric constant when placed in an electric field.

344 / 564

Category: Polarization of Dielectrics:

344. A parallel-plate capacitor is filled with a dielectric of relative permittivity $K$. If the capacitance without the dielectric is $C_0$, what is the new capacitance $C$ when the dielectric is introduced while the capacitor remains disconnected from the battery?

345 / 564

Category: Concept of conduction and polarization

345. What happens when a non-polar dielectric is placed in an electric field?

346 / 564

Category: Area of the plates

346. What is the area of the plates of a parallel-plate capacitor if the capacitance is $4 \, \text{F}$ and the separation between the plates is $1 \, \text{cm} = 1 \times 10^{-2} \, \text{m}$? (Given $\varepsilon_0 = 8.85 \times 10^{-12} \, \text{F m}^{-1}$)

347 / 564

Category: Capacitors in parallel

347. A parallel combination of two capacitors $C_1 = 3 \mu F$ and $C_2 = 7 \mu F$ is charged to a potential difference of 20 V. What is the total energy stored in the combination?

348 / 564

Category: Relation between charge, potential, and capacitance

348. (A) The capacitance of a parallel-plate capacitor increases when the distance between the plates is decreased.
(R) Capacitance is inversely proportional to the distance between the plates ($C \propto \frac{1}{d}$).

349 / 564

Category: Units of capacitance

349. How many picofarads are there in 5 nanofarads?

350 / 564

Category: Definition of capacitance

350. (A) The capacitance of an isolated conductor increases when another uncharged conductor is brought near it.
(R) The presence of a nearby uncharged conductor reduces the potential of the given conductor for the same charge.

351 / 564

Category: Bound charges in insulators

351. The dielectric constant ($K$) of a material is defined as:

352 / 564

Category: Electric Potential Energy:

352. A conducting sphere of radius $a = 0.1 m$ carries a charge $Q = 2 \times 10^{-6} C$. What is the electric potential energy stored in the sphere? Assume $\varepsilon_0 = 8.85 \times 10^{-12} F/m$.

353 / 564

Category: Electric Field and Force:

353. (A) The force between the plates of a charged parallel-plate capacitor remains constant when the plates are gradually pulled apart, provided the distance $d$ is small compared to the linear dimension of the plates.
(R) The electric field between the plates of a parallel-plate capacitor is uniform and given by $E = \left(\frac{\sigma}{\varepsilon_0}\right)$, which remains constant if the charge density $\sigma$ does not change.

354 / 564

Category: Dielectrics: materials that do not conduct electricity but can exhibit electric effects

354. A capacitor has a capacitance of $10 \mu F$ in vacuum. When a dielectric material with dielectric constant $K = 5$ is inserted between its plates, what is the new capacitance?

355 / 564

Category: Free and Bound Charges Inside a Conductor

355. What happens to the bound charges (positive ions) in a conductor when an electric field is applied?

356 / 564

Category: Dielectric constant of the material between the plates

356. (A) The dielectric constant of a conductor is infinite because the electric field inside it becomes zero when placed between capacitor plates.
(R) For a conductor, the electric field $E$ inside it is given by $E = \frac{E_0}{K}$, and since $E = 0$, $K$ must be infinite to satisfy this condition.

357 / 564

Category: Dielectric Strength:

357. What is the dielectric strength of a material?

358 / 564

Category: Capacitors with dielectric material between plates

358. A parallel plate capacitor has plates of area $A$ and separation $d$. If a dielectric slab of thickness $t = d/2$ and dielectric constant $K = 3$ is inserted between the plates, what is the new capacitance $C$?

359 / 564

Category: Dielectrics: materials that do not conduct electricity but can exhibit electric effects

359. A capacitor uses a dielectric material with dielectric strength $3 \, \text{kV/mm}$ and dielectric constant $K = 5$. If the capacitor has a capacitance of $10 \, \mu F$ and a plate separation of $0.1 \, mm$, what is the maximum voltage that can be applied before dielectric breakdown occurs?

360 / 564

Category: Force between the Plates of a Charged Capacitor

360. What is the expression for the force ($F$) between the plates of a parallel-plate capacitor with charge $Q$, plate area $A$, and permittivity of free space $\varepsilon_0$?

361 / 564

Category: Distance between the plates

361. An electroscope is connected across the plates of a charged parallel-plate capacitor. The leaves of the electroscope show a certain divergence. If the distance between the plates is increased, what happens to the divergence of the leaves?

362 / 564

Category: Conductors and Insulators

362. Which of the following statements about polar molecules is correct?

363 / 564

Category: Applications and Special Cases

363. What is the capacitance of a parallel plate capacitor with area $A$, plate separation $d$, and vacuum (or air) between the plates?

364 / 564

Category: Capacitance of an Isolated Spherical Conductor

364. (A) The capacitance of a spherical conductor increases when placed in a medium with higher dielectric constant.
(R) The capacitance of a spherical conductor is given by $C = 4 \pi \epsilon_0 K a$, where $K$ is the dielectric constant of the medium.

365 / 564

Category: Capacitance of a Conductor

365. Which of the following represents the correct unit of $\varepsilon_0$, the permittivity of free space?

366 / 564

Category: Area of the plates

366. If the capacitance of a parallel-plate capacitor is $4 \times 10^{-6}$ F and the plate area is $50$ cm$^2$, what is the distance between the plates? (Given $\varepsilon_0 = 8.85 \times 10^{-12}$ F/m)

367 / 564

Category: Capacitance of an Isolated Spherical Conductor

367. An isolated spherical conductor has a radius of 10 cm. What is its capacitance in vacuum? (Given $\epsilon_0 = 8.85 \times 10^{-12} \, \text{F m}^{-1}$)

368 / 564

Category: Capacitance:

368. What happens to the capacitance of a parallel-plate capacitor if the distance between the plates is doubled?

369 / 564

Category: Factors affecting capacitance

369. A parallel-plate capacitor has plates of area $A$ and separation $d$. If a dielectric slab of thickness $\frac{d}{3}$ and dielectric constant $K = 4$ is inserted between the plates, what is the new capacitance?

370 / 564

Category: Properties of conductors

370. In a metallic conductor, the charge carriers are:

371 / 564

Category: Energy Density:

371. A parallel-plate capacitor has plates of area $A = 50 \text{ cm}^2$ and separation $d = 1 \text{ mm}$. It is connected to a 200 V battery. What is the energy density in the electric field between the plates?

372 / 564

Category: Energy stored in the electric field of a charged capacitor

372. Two capacitors of capacitances $C_1$ and $C_2$ are connected in series and charged to a total potential difference $V$. How does the total energy stored in the system compare to the energy stored if the same capacitors were connected in parallel across the same potential difference?

373 / 564

Category: Effect of inserting dielectric material between plates

373. (A) When a dielectric slab is inserted between the plates of a capacitor disconnected from the battery, the potential difference between the plates decreases.
(R) The insertion of the dielectric slab increases the capacitance of the capacitor.

374 / 564

Category: Effect of dielectric material on capacitance

374. What happens to the capacitance of a parallel-plate capacitor when a dielectric material is inserted between its plates?

375 / 564

Category: Capacitor Configurations:

375. (A) In a series combination of capacitors, the equivalent capacitance is always less than the smallest individual capacitance in the combination.
(R) In series combination, the total charge on each capacitor remains the same as the charge on the equivalent capacitance.

376 / 564

Category: Combinations of Capacitors

376. A combination of capacitors consists of two capacitors, $C_1 = 2 \mu F$ and $C_2 = 4 \mu F$, connected in series, which is then connected in parallel to a third capacitor $C_3 = 6 \mu F$. What is the equivalent capacitance of the entire combination?

377 / 564

Category: Energy Stored in a Charged Capacitor

377. A 10 $\mu$F capacitor is charged to 100 V and then disconnected from the supply. It is connected to an uncharged 20 $\mu$F capacitor. What is the energy lost during this process?

378 / 564

Category: Electric Potential Energy:

378. A parallel-plate capacitor with plate area $A$ and separation $d$ carries charges $\pm Q$. What is the magnitude of the force of attraction between the plates if a dielectric slab of relative permittivity $K$ is inserted between them?

379 / 564

Category: Energy Density:

379. A capacitor with a capacitance of $50 \, \mu\text{F}$ is charged to a potential difference of $200 \, \text{V}$. What is the total energy stored in the capacitor?

380 / 564

Category: Equivalent capacitance in series and parallel combinations

380. Five identical capacitors each of capacitance $C$ are connected in series and charged to a potential difference $V$. If one capacitor is removed and the remaining four are reconnected in series to the same voltage source, how does the charge on each capacitor change?

381 / 564

Category: Units of capacitance

381. A conductor with capacitance $C$ is charged to a potential $V$. If the charge on the conductor is doubled, what happens to its capacitance?

382 / 564

Category: Energy Stored in a Charged Capacitor

382. (A) The energy stored in a capacitor is given by $U = \frac{1}{2} C V^2$.
(R) The work done by the battery in charging the capacitor is equal to the energy stored in the capacitor.

383 / 564

Category: Effect of inserting dielectric material between plates

383. A parallel plate capacitor with capacitance $C_0$ and energy stored $U_0$ is disconnected from a battery. A dielectric slab of dielectric constant $K = 6$ is inserted. What is the change in the energy stored in the capacitor?

384 / 564

Category: Capacitance of an Isolated Spherical Conductor

384. The Earth can be approximated as an isolated conducting sphere of radius $6.4 \times 10^6 \, \text{m}$. Given $\frac{1}{4 \pi \epsilon_0} = 9 \times 10^9 \, \text{N-m}^2 \, \text{C}^{-2}$, what is the approximate capacitance of Earth in farads?

385 / 564

Category: Energy Density:

385. A parallel-plate capacitor has a plate area of $0.02 \, \text{m}^2$ and a separation distance of $0.001 \, \text{m}$. What is its capacitance if the permittivity of free space is $8.85 \times 10^{-12} \, \text{F/m}$?

386 / 564

Category: Force between the Plates of a Charged Capacitor

386. For a parallel-plate capacitor with charge density $\sigma$ on each plate, what is the magnitude of the electric field between the plates?

387 / 564

Category: Dielectric strength

387. A parallel-plate capacitor has a dielectric material with dielectric constant $K = 4$ and dielectric strength $5 \times 10^6 \, \text{V/m}$. The separation between the plates is $0.1 \, \text{mm}$. What is the maximum charge that can be stored per unit area ($\sigma$) on the plates without dielectric breakdown?

388 / 564

Category: Definition of capacitance

388. (A) The capacitance of a conductor depends on the charge given to it.
(R) Capacitance is defined as $C = \frac{Q}{V}$, where $Q$ is the charge and $V$ is the potential.

389 / 564

Category: Capacitance of an Isolated Spherical Conductor

389. A spherical conductor of radius $a$ has capacitance $C$ in air. If another identical conductor is brought near it without changing its charge, how does its capacitance change?

390 / 564

Category: Permittivity and dielectric constant

390. A parallel-plate capacitor with air between its plates is connected to a battery and fully charged. While keeping it connected to the battery, a dielectric slab of dielectric constant $K = 3$ is inserted completely filling the space between the plates. Which of the following correctly describes the changes in charge, capacitance, and energy stored?

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Category: Applications and Special Cases

391. If a metallic slab of thickness $t$ ($K = \infty$) is placed between the plates of a parallel plate capacitor with area $A$ and separation $d$, what is the new capacitance?

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Category: Capacitance of an Isolated Spherical Conductor

392. (A) The capacitance of an isolated spherical conductor increases when placed in a medium with higher dielectric constant.
(R) Capacitance of an isolated spherical conductor is given by $C_K = 4 \pi \epsilon_0 K a$, where $K$ is the dielectric constant and $a$ is the radius.

393 / 564

Category: Free and Bound Charges Inside a Conductor

393. Which of the following best describes the role of free electrons in a conductor when an electric field is applied?

394 / 564

Category: Dielectrics:

394. If an external electric field $E_0 = 100 V/m$ is applied to a dielectric with dielectric constant $K = 2$, what is the resultant electric field $E$ inside the dielectric?

395 / 564

Category: Energy Stored in a Charged Capacitor

395. What is the energy stored in a capacitor of capacitance $4 \mu F$ charged to a potential difference of $50 V$?

396 / 564

Category: Effect of inserting dielectric material between plates

396. (A) When a dielectric slab is inserted between the plates of a charged capacitor and the battery remains connected, the charge on the plates increases.
(R) The capacitance of the capacitor increases when a dielectric slab is inserted between its plates.

397 / 564

Category: Classification of materials into conductors and insulators

397. A parallel-plate capacitor with plate area $A = 0.02 \, \text{m}^2$ and plate separation $d = 1 \, \text{mm}$ is filled with a dielectric of constant $K = 4$. If the capacitor is charged to $V = 100 \, \text{V}$, what is the magnitude of the induced charge density on the surface of the dielectric?

398 / 564

Category: Energy Density:

398. A capacitor stores 0.5 J of energy when charged to a potential difference of 100 V. What will be the energy stored if the potential difference is increased to 200 V while keeping the capacitance unchanged?

399 / 564

Category: Energy stored in the electric field of a charged capacitor

399. A capacitor stores 0.2 J of energy when connected to a 50 V power supply. What is its capacitance?

400 / 564

Category: Work done in charging the capacitor

400. A capacitor of capacitance $C$ is charged to a potential difference $V$. It is then connected to an uncharged capacitor of the same capacitance. What is the ratio of the initial energy stored in the first capacitor to the final energy stored in the combination?

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Category: Work done in charging the capacitor

401. A battery of emf $V$ is used to charge a capacitor $C$ through a resistance $R$. What percentage of the energy supplied by the battery is lost as heat during the charging process?

402 / 564

Category: Bound charges in insulators

402. If a dielectric slab with dielectric constant $K$ is placed between the plates of a charged parallel-plate capacitor, what is the magnitude of the induced charge ($Q'$) on the surfaces of the dielectric?

403 / 564

Category: Permittivity and dielectric constant

403. (A) When a dielectric slab is inserted between the plates of a charged capacitor (battery disconnected), the induced charge on the surface of the dielectric is always less than the charge on the plates.
(R) The induced charge $Q'$ on the dielectric surface is given by $Q' = Q \left(1 - \frac{1}{K}\right)$, where $K > 1$ for any dielectric material.

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Category: Capacitors with dielectric material between plates

404. What is the dielectric constant $K$ of a material if the capacitance of a capacitor with vacuum between its plates is $C_0$ and becomes $4C_0$ when filled with the dielectric?

405 / 564

Category: Capacitance of a Parallel-Plate Capacitor with Dielectric Slab

405. If a dielectric slab of dielectric constant $K$ is introduced between the plates of a parallel-plate capacitor, how does it affect the capacitance?

406 / 564

Category: Properties of insulators

406. A dielectric material has a dielectric strength of 5 kV/mm. What is the maximum potential difference that can be applied across a 2 mm thick slab of this material without causing dielectric breakdown?

407 / 564

Category: Dielectrics: materials that do not conduct electricity but can exhibit electric effects

407. (A) When a non-polar dielectric is placed in an electric field, it develops an induced dipole moment.
(R) The electrons in non-polar molecules are displaced relative to the nuclei under an external electric field, creating charge separation.

408 / 564

Category: Capacitor Configurations:

408. A parallel-plate capacitor has plates of area $A = 100\,cm^2$ and separation $d = 2\,mm$. It is filled with two dielectrics ($K_1 = 3$ and $K_2 = 6$) arranged side by side (parallel arrangement). What is the equivalent capacitance?

409 / 564

Category: Distance between the plates

409. (A) The capacitance of a capacitor increases when the distance between its plates is decreased.
(R) The capacitance ($C$) of a capacitor is inversely proportional to the distance ($d$) between the plates, i.e., $C \propto 1/d$.

410 / 564

Category: Definition of capacitance

410. Two conductors are placed close to each other, forming a capacitor. If the net charge on the system is zero and the potential difference between them is $20 V$, what can be inferred about the charges on the individual conductors?

411 / 564

Category: Electric Field and Force:

411. (A) The force between the plates of a parallel-plate capacitor with charge $+Q$ and $-Q$ is given by $F = \frac{Q^2}{2 A \varepsilon_0}$.
(R) The electric field between the plates is uniform and given by $E = \frac{\sigma}{\varepsilon_0}$.

412 / 564

Category: Relation between charge, potential, and capacitance

412. A parallel-plate capacitor has plates of area $A$ separated by a distance $d$ with a dielectric of constant $K$. If the dielectric is replaced by another material with dielectric constant $2K$ while keeping the charge on the plates constant, how does the potential difference between the plates change?

413 / 564

Category: Distance between the plates

413. A parallel-plate capacitor is connected to a constant voltage source. If the distance between the plates is reduced to half its original value while keeping the voltage constant, how does the capacitance and charge on the plates change?

414 / 564

Category: Properties of conductors

414. (A) The capacitance of a conductor increases when another earthed conductor is brought close to it.
(R) The presence of an earthed conductor reduces the potential of the charged conductor by inducing opposite charges on it.

415 / 564

Category: Energy stored in the electric field of a charged capacitor

415. (A) The energy stored in a parallel-plate capacitor is given by $U = \frac{1}{2} C V^2$.
(R) The energy stored in a capacitor resides in the electric field between its plates.

416 / 564

Category: Conductors and Insulators

416. In a metallic conductor, what happens to the positively charged ions when an external electric field is applied?

417 / 564

Category: Concept of conduction and polarization

417. Which of the following materials is an example of a dielectric?

418 / 564

Category: Properties of conductors

418. If the drift velocity of electrons in a conductor is $v_d$ when an electric field $E$ is applied, what happens to $v_d$ if the electric field is doubled?

419 / 564

Category: Polarization of Dielectrics:

419. A parallel-plate capacitor with plate separation $d$ and area $A$ is charged to a potential difference $V_0$. A dielectric slab of thickness $t$ ($t < d$) and dielectric constant $K$ is inserted between the plates. The new potential difference across the capacitor is:

420 / 564

Category: Capacitors with dielectric material between plates

420. A parallel-plate capacitor has plate area $A = 0.01 \, \text{m}^2$, plate separation $d = 0.004 \, \text{m}$, and a metal slab of thickness $t = 0.002 \, \text{m}$ inserted between the plates. What is the new capacitance?

421 / 564

Category: Dielectric Strength:

421. A parallel-plate capacitor has a dielectric with a dielectric strength of \$10^7 V/m\$. If the voltage applied is \$1 kV\$, what should be the minimum separation between plates to avoid breakdown (assuming a safety factor of 10\% of dielectric strength)?

422 / 564

Category: Relation between charge, potential, and capacitance

422. Calculate the work done in charging a $2 \, \mu F$ capacitor to a potential difference of $100 \, V$.

423 / 564

Category: Dielectrics:

423. (A) The electric field inside a dielectric slab placed between the plates of a parallel plate capacitor decreases by a factor equal to the dielectric constant of the material.
(R) The polarisation charges induced on the surfaces of the dielectric produce an opposing electric field that reduces the net field within the dielectric.

424 / 564

Category: Capacitors in series

424. (A) The equivalent capacitance of capacitors connected in series is always less than the smallest individual capacitance in the combination.
(R) In a series combination, the reciprocal of the equivalent capacitance equals the sum of the reciprocals of the individual capacitances.

425 / 564

Category: Capacitance with Dielectric Slab Inserted

425. (A) When a dielectric slab of thickness $t$ and dielectric constant $K$ is inserted between the plates of a parallel-plate capacitor, the energy stored in the capacitor decreases if the slab is inserted after disconnecting the battery.
(R) The decrease in energy occurs because the work done by the external agent to insert the dielectric slab is negative.

426 / 564

Category: Formula for capacitance of a spherical conductor

426. A spherical conductor of radius $R$ has a capacitance of $C$ in air. What will be its capacitance when placed in a medium with dielectric constant $K=3$?

427 / 564

Category: Electric Field and Force:

427. (A) The force between the plates of a parallel-plate capacitor remains constant as the separation distance $d$ increases because
(R) the energy density $\frac{1}{2}\varepsilon_0 E^2$ between the plates remains unchanged with increasing separation.

428 / 564

Category: Capacitors in series

428. Two capacitors of 3 $\mu$F and 6 $\mu$F are connected in series and charged with a 90 V battery. What is the potential difference across the 3 $\mu$F capacitor?

429 / 564

Category: Effect of inserting dielectric material between plates

429. A parallel plate capacitor with capacitance $C_0$ and plate separation $d$ is disconnected from a battery of voltage $V_0$. A dielectric slab of thickness $\frac{d}{2}$ and dielectric constant $K = 4$ is inserted into the capacitor. What is the new electric field between the plates?

430 / 564

Category: Capacitance:

430. A conductor has a capacitance of 5 $\mu$F. What is the potential difference across it when it holds a charge of 10 $\mu$C?

431 / 564

Category: Dependence of Capacitance on Various Factors

431. A parallel-plate capacitor has plate area $A$ and separation $d$. If the space between the plates is filled with a dielectric of constant $K$, how does the capacitance change if the plate area is doubled and the dielectric constant is halved?

432 / 564

Category: Equivalent capacitance in series and parallel combinations

432. Two capacitors with capacitances 5 \mu F and 10 \mu F are connected in parallel. What is the equivalent capacitance of the combination?

433 / 564

Category: Units of capacitance

433. (A) The SI unit of capacitance is the farad.
(R) Capacitance is defined as the ratio of charge to potential difference and its unit is coulomb per volt.

434 / 564

Category: Conductors and Insulators

434. (A) Metals are good conductors of electricity.
(R) Metals have a large number of free electrons that can move easily.

435 / 564

Category: Energy density in capacitors

435. What is the formula for energy density in a capacitor?

436 / 564

Category: Dielectric strength

436. What is the unit of dielectric strength?

437 / 564

Category: Combinations of Capacitors

437. Three capacitors of 2 \mu F, 3 \mu F, and 6 \mu F are connected such that the 2 \mu F and 3 \mu F capacitors are in series, and this combination is in parallel with the 6 \mu F capacitor. If the entire setup is connected to a 12 V battery, what is the charge on the 3 \mu F capacitor?

438 / 564

Category: Combinations of Capacitors

438. Two capacitors with capacitances $C_1 = 3 \mu F$ and $C_2 = 5 \mu F$ are connected in parallel. A potential difference of 10 V is applied across the combination. Calculate the total charge stored in the system.

439 / 564

Category: Polarization of Dielectrics:

439. What happens to the electric field inside a dielectric material when it is placed in an external electric field $E_0$?

440 / 564

Category: Electric polarization of dielectrics

440. What happens to the electric dipole moment of non-polar dielectric molecules when placed in an external electric field?

441 / 564

Category: Energy Stored in a Charged Capacitor

441. What is the energy stored in a conducting sphere of radius $0.1 m$ and charge $2 \mu C$? (Given $\epsilon_0 = 8.85 \times 10^{-12} F/m$)

442 / 564

Category: Capacitors with dielectric material between plates

442. A parallel-plate capacitor has plate area $A = 0.02 \, \text{m}^2$ and plate separation $d = 0.005 \, \text{m}$. A dielectric slab of thickness $t = 0.003 \, \text{m}$ and dielectric constant $K = 4$ is inserted between the plates. What is the capacitance of the capacitor?

443 / 564

Category: Capacitors in parallel

443. (A) The equivalent capacitance of three capacitors connected in parallel is given by $C = C_1 + C_2 + C_3$.
(R) In a parallel combination, the potential difference across each capacitor remains the same.

444 / 564

Category: Permittivity and dielectric constant

444. (A) The dielectric constant of a conductor is infinite.
(R) Inside a conductor placed in an electric field, the net electric field becomes zero.

445 / 564

Category: Capacitor Configurations:

445. Four identical capacitors each of capacitance $C$ are connected in series. If the equivalent capacitance is 2 $\mu F$, what is the value of $C$?

446 / 564

Category: Energy Density:

446. What capacitance is needed to store 0.5 J of energy at 100 V?

447 / 564

Category: Energy Stored in a Charged Capacitor

447. A $100 pF$ capacitor is charged to $500 V$ and then connected to an uncharged $200 pF$ capacitor. What is the loss of energy in this process?

448 / 564

Category: Definition of capacitance

448. A conductor has a capacitance of $5 F$. If the potential difference across it is $10 V$, what is the charge stored on the conductor?

449 / 564

Category: Dependence of Capacitance on Various Factors

449. (A) The capacitance of a parallel-plate capacitor increases if the area of its plates is increased.
(R) The capacitance ($C$) of a parallel-plate capacitor is directly proportional to the plate area ($A$), as given by $C = \frac{\varepsilon_0 K A}{d}$.

450 / 564

Category: Electric polarization of dielectrics

450. The dielectric strength of air at NTP is 3 kV/mm. If the maximum electric field that can be applied across a parallel-plate capacitor with an air gap of 1 mm without causing breakdown is measured, what is this maximum field?

451 / 564

Category: Properties of insulators

451. What is the approximate conductivity of an ideal dielectric?

452 / 564

Category: Free and Bound Charges Inside a Conductor

452. Which of the following is an example of an insulator?

453 / 564

Category: Factors affecting capacitance

453. How does the capacitance of a parallel-plate capacitor change if the area of the plates is doubled?

454 / 564

Category: Capacitor Configurations:

454. Two capacitors of 5 \$\mu F\$ and 10 \$\mu F\$ are connected in parallel to a 20 V battery. What is the total energy stored in the combination?

455 / 564

Category: Capacitance of a Conductor

455. (A) The capacitance of a spherical conductor increases when placed in a medium with higher dielectric constant.
(R) The presence of a dielectric medium reduces the electric field inside the conductor, thereby increasing its ability to store charge for the same potential.

456 / 564

Category: Units of capacitance

456. Which of the following represents the dimensions of capacitance?

457 / 564

Category: Factors affecting capacitance

457. A parallel-plate capacitor has an initial capacitance of $C_0$. A metal plate of thickness $\frac{d}{4}$ is inserted exactly midway between the plates. What is the new capacitance?

458 / 564

Category: Capacitors with dielectric material between plates

458. A parallel-plate capacitor has capacitance $C_0 = 5 \, \text{nF}$ in vacuum. When a dielectric material is inserted between its plates, the capacitance increases to $C = 20 \, \text{nF}$. What is the dielectric constant of the material?

459 / 564

Category: Capacitors in series

459. A 10 $\mu$F capacitor and a 20 $\mu$F capacitor are connected in series across a 60 V battery. What is the charge on each capacitor?

460 / 564

Category: Classification of materials into conductors and insulators

460. In metallic conductors, what are the charge carriers responsible for electric current?

461 / 564

Category: Relation between charge, potential, and capacitance

461. A capacitor of capacitance $C$ is charged to a potential difference $V$ and then disconnected from the battery. If the distance between the plates is doubled without discharging the capacitor, what happens to the energy stored in the capacitor?

462 / 564

Category: Conductors and Insulators

462. What is the primary charge carrier responsible for conduction in metals?

463 / 564

Category: Dielectric strength

463. If the dielectric strength of air at NTP is 3 kV/mm, what is the maximum voltage that can be applied across a 2 mm air gap without causing breakdown?

464 / 564

Category: Energy stored in the electric field of a charged capacitor

464. What is the energy stored in a capacitor with capacitance $C = 10 \mu F$ charged to a potential difference of $V = 100 V$?

465 / 564

Category: Capacitance of an Isolated Spherical Conductor

465. (A) The capacitance of an isolated spherical conductor increases when it is placed in a medium with higher dielectric constant.
(R) The capacitance of an isolated spherical conductor depends on the permittivity of the surrounding medium as $C_K = 4 \pi \epsilon_0 K a$, where $K$ is the dielectric constant.

466 / 564

Category: Area of the plates

466. (A) The area of the plates of a parallel-plate capacitor is directly proportional to its capacitance.
(R) The formula for the area of the plates is $A = \frac{C d}{\varepsilon_0}$, where $C$ is the capacitance, $d$ is the distance between the plates, and $\varepsilon_0$ is the permittivity of free space.

467 / 564

Category: Dielectrics: materials that do not conduct electricity but can exhibit electric effects

467. Which of the following molecules is an example of a polar molecule?

468 / 564

Category: Free and Bound Charges Inside a Conductor

468. If the potential difference across a conductor is doubled while its capacitance remains unchanged, what happens to the charge stored on the conductor?

469 / 564

Category: Factors affecting capacitance

469. If a dielectric material with dielectric constant $K = 4$ is inserted between the plates of a parallel-plate capacitor, how does the capacitance change compared to when there is air between the plates?

470 / 564

Category: Energy Density:

470. A parallel-plate capacitor has an electric field of $1.5 \times 10^6 \, \text{V/m}$ between its plates. What is the energy density stored in the electric field? (Given $\varepsilon_0 = 8.85 \times 10^{-12} \, \text{F/m}$)

471 / 564

Category: Dielectrics:

471. Which type of dielectric molecule has a permanent dipole moment even in the absence of an external electric field?

472 / 564

Category: Dielectrics: materials that do not conduct electricity but can exhibit electric effects

472. A parallel-plate capacitor with vacuum between its plates has a capacitance $C_0$. It is charged to a potential difference $V_0$ and disconnected from the battery. A dielectric slab of dielectric constant $K = 4$ is inserted completely into the space between the plates. What happens to the electric field inside the dielectric and the potential difference across the plates?

473 / 564

Category: Factors affecting capacitance

473. A parallel-plate capacitor with air as the dielectric has a capacitance of $10 \, \mu F$. If air is replaced with a dielectric material of dielectric constant $K = 5$, what will be the new capacitance?

474 / 564

Category: Capacitance of a Conductor

474. A conductor has a capacitance of 5 nF when it is given a charge of 10 µC. What is the potential of the conductor?

475 / 564

Category: Capacitance of an Isolated Spherical Conductor

475. If an isolated spherical conductor of radius $a$ is placed in a medium with dielectric constant $K$, what will be its capacitance?

476 / 564

Category: Permittivity and dielectric constant

476. A parallel-plate capacitor has plates of area $A$ and separation $d$. It is charged to a potential difference $V_0$ and then disconnected from the battery. A dielectric slab of dielectric constant $K = 4$ and thickness $t = \frac{d}{2}$ is inserted symmetrically between the plates. What is the ratio of the electric field in the air gap to that in the dielectric after insertion?

477 / 564

Category: Force between the Plates of a Charged Capacitor

477. A parallel-plate capacitor with plate area $A$ and charge $\pm Q$ on its plates is separated by a distance $d$. The plates are then pulled apart to double the separation while maintaining the charge. How does the force between the plates change during this process?

478 / 564

Category: Dielectrics: materials that do not conduct electricity but can exhibit electric effects

478. (A) When a non-polar dielectric is placed in an electric field, it acquires a net dipole moment in the direction of the field.
(R) Non-polar molecules have zero permanent dipole moment but develop induced dipole moment when subjected to an external electric field.

479 / 564

Category: Units of capacitance

479. Which of the following represents the dimensions of capacitance?

480 / 564

Category: Capacitors in parallel

480. Four capacitors with capacitances $1 \mu F$, $2 \mu F$, $3 \mu F$, and $4 \mu F$ are connected in parallel to a 100 V source. Calculate the total energy stored in the combination.

481 / 564

Category: Electric polarization of dielectrics

481. When a dielectric slab completely fills the space between the plates of a parallel-plate capacitor, the potential difference across the plates decreases by a factor of 4. What is the relative permittivity ($K$) of the dielectric material?

482 / 564

Category: Dielectric strength

482. (A) A parallel-plate capacitor with a mica dielectric (\$K = 6\$) and plate separation of \$1 \, mm\$ can withstand a maximum voltage of \$5 \, kV\$ without breakdown.
(R) The dielectric strength of mica is \$30 \times 10^6 \, V/m\$, which ensures the electric field does not exceed this value at the given voltage and plate separation.

483 / 564

Category: Properties of conductors

483. A metallic conductor of length $L$ and cross-sectional area $A$ has $n$ free electrons per unit volume. An external electric field $E$ is applied across its ends. If the charge on an electron is $-e$, what is the average drift velocity $v_d$ of the electrons in the conductor?

484 / 564

Category: Behavior of free electrons in conductors

484. When an external electric field is applied across a conductor, how does it affect the motion of free electrons?

485 / 564

Category: Capacitors with dielectric material between plates

485. (A) The capacitance of a parallel-plate capacitor increases when a dielectric slab is inserted between the plates.
(R) The presence of a dielectric reduces the electric field between the plates.

486 / 564

Category: Conductors and Insulators

486. What are the mobile charge carriers in metals?

487 / 564

Category: Factors affecting capacitance

487. A parallel-plate capacitor has plates of dimensions $10 \text{cm} \times 10 \text{cm}$ separated by 1 mm. If the medium between the plates is replaced by a dielectric ($K = 5$) and the plate area is doubled while maintaining the same separation, what is the ratio of the new capacitance to the original capacitance?

488 / 564

Category: Capacitance of a Conductor

488. What is the capacitance $C$ of a conductor defined as?

489 / 564

Category: Formula for capacitance of a spherical conductor

489. How is the capacitance of a spherical conductor related to its radius?

490 / 564

Category: Energy density in capacitors

490. If the energy density in a capacitor's electric field is 0.5 J/m$^3$, what is the magnitude of the electric field? ($\varepsilon_0 = 8.85 \times 10^{-12}$ F/m)

491 / 564

Category: Polarization of Dielectrics:

491. A non-polar dielectric and a polar dielectric are subjected to the same external electric field $E_0$. If $P_{non-polar}$ and $P_{polar}$ are their respective polarization densities, which statement is correct?

492 / 564

Category: Energy density in capacitors

492. (A) The energy density of a capacitor with air as the dielectric is given by $u = \frac{1}{2} \varepsilon_0 E^2$.
(R) Energy density depends only on the electric field and permittivity of free space, not on the physical dimensions of the capacitor.

493 / 564

Category: Dielectric strength

493. A capacitor has two dielectrics: one with thickness $0.2 mm$, dielectric constant $5$, and breakdown field $15 MV/m$; another with thickness $0.3 mm$, dielectric constant $2$, and breakdown field $6 MV/m$. What is the maximum safe voltage that can be applied?

494 / 564

Category: Capacitors in parallel

494. (A) When three capacitors of capacitances $C_1 = 2 \mu F$, $C_2 = 4 \mu F$, and $C_3 = 6 \mu F$ are connected in parallel to a 100 V battery, the total energy stored in the combination is 60 mJ.
(R) The energy stored in capacitors connected in parallel is given by $U = \frac{1}{2} C V^2$, where $C$ is the equivalent capacitance of the parallel combination.

495 / 564

Category: Combinations of Capacitors

495. Three capacitors with capacitances $C_1 = 4 \mu F$, $C_2 = 6 \mu F$, and $C_3 = 12 \mu F$ are connected in series. Calculate the equivalent capacitance of the combination.

496 / 564

Category: Energy stored in the electric field of a charged capacitor

496. A capacitor with plate area $A = 0.5 m^2$ and separation distance $d = 1 mm$ is charged to a potential difference of 100 V. Calculate the energy density ($u$) in the electric field between the plates. (Assume $\epsilon_0 = 8.85 \times 10^{-12} F/m$)

497 / 564

Category: Capacitor Configurations:

497. Three capacitors of capacitances $C_1 = 2\,\mu F$, $C_2 = 4\,\mu F$, and $C_3 = 6\,\mu F$ are connected in series across a potential difference of $V = 12\,V$. What is the total energy stored in the combination?

498 / 564

Category: Definition of capacitance

498. A parallel-plate capacitor has a charge of $+5 \mu C$ on one plate and $-5 \mu C$ on the other plate. If the potential difference between the plates is $10 V$, what is the capacitance of the capacitor?

499 / 564

Category: Applications and Special Cases

499. (A) If a metallic slab fills the entire space between the plates of a capacitor, its capacitance becomes infinite.
(R) For a metallic slab, the dielectric constant $K$ is infinity.

500 / 564

Category: Area of the plates

500. An electrolytic capacitor has a capacitance of 0.1 \, \text{F} and a very small plate separation of $10^{-6} \, \text{m}$. Assuming the permittivity of free space $\varepsilon_0 = 8.85 \times 10^{-12} \, \text{F m}^{-1}$, estimate the area of each plate.

501 / 564

Category: Energy Density:

501. (A) The energy density between the plates of a parallel-plate capacitor is proportional to the square of the electric field strength.
(R) The energy stored in a capacitor is given by $U = \frac{1}{2} C V^2$, and for a parallel-plate capacitor, $V = E d$.

502 / 564

Category: Behavior of free electrons in conductors

502. (A) In metals, the application of an external electric field causes free electrons to drift in the direction opposite to the field.
(R) Free electrons experience a force opposite to the applied electric field due to their negative charge.

503 / 564

Category: Units of capacitance

503. A capacitor has a capacitance of $5 \times 10^{-9} \text{ F}$. What is its equivalent capacitance in picofarads?

504 / 564

Category: Capacitance of a Conductor

504. An isolated spherical conductor of radius 1 m is placed in a medium with dielectric constant $K = 2$. What is the capacitance of this conductor? [Given: $\frac{1}{4 \pi \epsilon_0} = 9 \times 10^9 \, \text{N-m}^2 \, \text{C}^{-2}$]

505 / 564

Category: Classification of materials into conductors and insulators

505. A polar dielectric slab is inserted between the plates of a parallel-plate capacitor without altering the charge on the plates. How does the potential difference between the plates change if the dielectric constant of the slab is $K = 3$?

506 / 564

Category: Conductors and Insulators

506. Which property distinguishes a dielectric (insulator) from a conductor when subjected to an external electric field?

507 / 564

Category: Capacitance:

507. (A) The capacitance of a parallel-plate capacitor increases when the distance between the plates is decreased.
(R) The capacitance is inversely proportional to the distance between the plates.

508 / 564

Category: Energy density in capacitors

508. A parallel-plate capacitor has plates of area $200 \, \text{cm}^2$ separated by $1 \, \text{mm}$. It is charged to a potential difference of $500 \, \text{V}$ and disconnected from the source. The energy density in the electric field between the plates is:

509 / 564

Category: Energy stored in the electric field of a charged capacitor

509. What is the energy density in the electric field between the plates of a parallel-plate capacitor if the electric field strength is $E = 5000 N/C$? (Given $\epsilon_0 = 8.85 \times 10^{-12} C^2 / Nm^2$)

510 / 564

Category: Polarization of Dielectrics:

510. The dielectric strength of a material is best described by which of the following statements?

511 / 564

Category: Capacitance of a Conductor

511. A spherical conductor of radius $a$ is placed in vacuum. If the radius of the conductor is doubled, what will be its new capacitance?

512 / 564

Category: Dependence of Capacitance on Various Factors

512. (A) The capacitance of a parallel-plate capacitor decreases when the distance between the plates is increased.
(R) The capacitance is inversely proportional to the distance between the plates, as given by $C \propto \frac{1}{d}$.

513 / 564

Category: Electric Field and Force:

513. A dielectric slab of dielectric constant $K$ is inserted between the plates of a charged parallel-plate capacitor connected to a battery. How does the electric field inside the dielectric compare to the original electric field $E_0$?

514 / 564

Category: Work done in charging the capacitor

514. A capacitor of capacitance 10 $\mu$F is charged to a potential difference of 100 V. What is the energy stored in the capacitor?

515 / 564

Category: Units of capacitance

515. What is the SI unit of capacitance?

516 / 564

Category: Applications and Special Cases

516. (A) The capacitance of a parallel plate capacitor increases when a dielectric slab is inserted between the plates.
(R) The electric field inside the dielectric slab reduces due to polarization.

517 / 564

Category: Capacitors in parallel

517. Two capacitors $C_1 = 2 \mu F$ and $C_2 = 8 \mu F$ are connected in parallel to a 10 V battery. Calculate the charge on $C_2$.

518 / 564

Category: Area of the plates

518. (A) A parallel-plate capacitor with capacitance $C = 1 \, \text{F}$ and plate separation $d = 1 \, \text{mm}$ would require an impractical plate area if constructed in free space.
(R) The required plate area for a parallel-plate capacitor increases proportionally with capacitance and plate separation.

519 / 564

Category: Permittivity and dielectric constant

519. A parallel-plate capacitor has a capacitance of $C_0$ in vacuum. When a dielectric slab of dielectric constant $K = 5$ is inserted between the plates, what is the new capacitance?

520 / 564

Category: Properties of insulators

520. Which of the following statements about polar molecules is correct?

521 / 564

Category: Polarization of Dielectrics:

521. A dielectric material with dielectric constant $K$ and dielectric strength $S$ is placed in a uniform electric field $E_0$. The maximum thickness $t_{max}$ the dielectric can have without experiencing breakdown is:

522 / 564

Category: Capacitors in series

522. Two capacitors $C_1 = 6\mu F$ (with air dielectric) and $C_2 = 12\mu F$ (with dielectric constant κ=4) are connected in series. If the dielectric is removed from $C_2$ while keeping it connected, what happens to the equivalent capacitance of the combination?

523 / 564

Category: Equivalent capacitance in series and parallel combinations

523. Three capacitors of capacitances 6 pF, 12 pF, and 24 pF are connected in series. What is the equivalent capacitance of the combination?

524 / 564

Category: Electric polarization of dielectrics

524. A non-polar dielectric slab is placed in a uniform electric field $E_0$ created by a parallel plate capacitor. The slab acquires an induced dipole moment per unit volume ($P$) such that the internal electric field $E$ reduces to one-third of $E_0$. What is the relative permittivity ($K$) of the dielectric material?

525 / 564

Category: Behavior of free electrons in conductors

525. What is the behavior of free electrons in a conductor when an external electric field is applied?

526 / 564

Category: Dielectrics and Electric Polarization

526. A non-polar dielectric material is placed in an external electric field $E$. What happens to the molecules of the dielectric?

527 / 564

Category: Properties of insulators

527. (A) The dielectric constant of vacuum is 1.
(R) The capacitance of a capacitor filled with vacuum is equal to its capacitance in air.

528 / 564

Category: Energy stored in the electric field of a charged capacitor

528. (A) The energy stored in a parallel plate capacitor is directly proportional to the square of the potential difference across its plates.
(R) The energy density in the electric field between the plates of a charged capacitor is given by $u = \frac{1}{2} \epsilon_0 E^2$, where $E$ is the electric field strength.

529 / 564

Category: Concept of conduction and polarization

529. What distinguishes conductors from insulators?

530 / 564

Category: Free and Bound Charges Inside a Conductor

530. (A) Free electrons are responsible for electrical conductivity in metals.
(R) Free electrons are not bound to any particular atom but move freely throughout the metal.

531 / 564

Category: Definition of capacitance

531. A conductor has a capacitance of 5 $\mu$F. What charge is required to raise its potential by 10 V?

532 / 564

Category: Effect of dielectric material on capacitance

532. A parallel-plate capacitor has plate area $A = 200 \, \text{cm}^2$ and plate separation $d = 6 \, \text{mm}$. Two dielectric slabs of thickness $t_1 = 2 \, \text{mm}$ ($K_1 = 3$) and $t_2 = 3 \, \text{mm}$ ($K_2 = 6$) are inserted between the plates. What is the total capacitance of the capacitor?

533 / 564

Category: Dielectric Strength:

533. (A) The dielectric strength of a material is the maximum electric field it can tolerate without breakdown.
(R) Dielectric strength is expressed in units of $kV/mm$ because it represents the potential gradient required to puncture the dielectric.

534 / 564

Category: Effect of inserting dielectric material between plates

534. A parallel-plate capacitor is charged and then disconnected from the battery. If a dielectric slab is inserted between the plates, what happens to the electric field between the plates?

535 / 564

Category: Energy Stored in a Charged Capacitor

535. A capacitor of capacitance $C = 5 \mu F$ is charged to a potential difference of $V = 100$ V. What is the energy stored in the capacitor?

536 / 564

Category: Dielectric constant of the material between the plates

536. A parallel-plate capacitor has plates of area $A = 0.1 \, \text{m}^2$ separated by $d = 1 \, \text{mm}$. When filled with a dielectric material, its capacitance increases from $C_0 = 885 \, \text{pF}$ (vacuum) to $C = 1770 \, \text{pF}$. What is the dielectric constant of the material?

537 / 564

Category: Effect of inserting dielectric material between plates

537. A parallel plate capacitor with capacitance $C_0$ and initial charge $Q_0$ has its potential difference maintained at $V_0$ while a dielectric slab of dielectric constant $K$ is inserted. What is the new charge on the plates if the dielectric constant is increased to three times its original value?

538 / 564

Category: Energy density in capacitors

538. (A) The energy density in a parallel-plate capacitor filled with a dielectric is always greater than that in the same capacitor without any dielectric for the same applied voltage.
(R) The presence of a dielectric increases the capacitance and reduces the electric field between the plates.

539 / 564

Category: Factors affecting capacitance

539. (A) When a dielectric slab of thickness $t = \frac{d}{2}$ and dielectric constant $K$ is inserted between the plates of a parallel-plate capacitor, the capacitance becomes $C = \frac{2 K \varepsilon_0 A}{d + t(K - 1)}$.
(R) The effective distance between the plates decreases due to the introduction of the dielectric slab, leading to an increase in capacitance.

540 / 564

Category: Dielectric strength

540. A capacitor with plate area $A = 0.01 \, \text{m}^2$ and separation $d = 0.05 \, \text{mm}$ uses a dielectric with $K = 6$ and dielectric strength $2 \times 10^7 \, \text{V/m}$. What is the maximum energy that can be stored in this capacitor?

541 / 564

Category: Formula for capacitance of a spherical conductor

541. (A) The capacitance of an isolated spherical conductor increases when placed in a medium with higher dielectric constant.
(R) The capacitance of a spherical conductor is directly proportional to the dielectric constant of the surrounding medium.

542 / 564

Category: Dielectric constant of the material between the plates

542. How is the dielectric constant (K) related to the relative permittivity ($\varepsilon_r$) of a material?

543 / 564

Category: Permittivity and dielectric constant

543. What is the dielectric constant $K$ of a material defined as?

544 / 564

Category: Electric Potential Energy:

544. (A) The energy stored in a parallel-plate capacitor increases when the distance between the plates is decreased while keeping the charge constant.
(R) The energy density of the electric field between the plates of a capacitor is given by $\frac{1}{2} \varepsilon_0 E^2$, and decreasing the plate separation increases the electric field $E$.

545 / 564

Category: Energy Stored in a Charged Capacitor

545. A parallel-plate capacitor with plate area $A = 50 \, cm^2$ and separation $d = 2 \, mm$ is charged to $V = 200$ V. If the permittivity of free space $\epsilon_0 = 8.85 \times 10^{-12} \, F/m$, what is the electric energy density between the plates?

546 / 564

Category: Dielectrics and Electric Polarization

546. Which of the following molecules is non-polar?

547 / 564

Category: Bound charges in insulators

547. A parallel-plate capacitor with plate area $A$ and plate separation $d$ has a dielectric slab of thickness $t$ ($t < d$) and dielectric constant $K$ inserted between its plates. If the capacitor carries charge $Q$ on each plate, what is the magnitude of bound charge density on the surface of the dielectric?

548 / 564

Category: Capacitance of a Parallel-Plate Capacitor with Dielectric Slab

548. A parallel-plate capacitor has plate area $A = 2 \, \text{m}^2$ and separation $d = 0.01 \, \text{m}$. A dielectric slab of thickness $t = 0.005 \, \text{m}$ and dielectric constant $K = 4$ is inserted between the plates. What is the capacitance of the capacitor?

549 / 564

Category: Properties of insulators

549. A parallel plate capacitor has a capacitance of 10 $\mu$F in vacuum. When a dielectric slab with dielectric constant $K = 5$ is inserted between the plates, what is the new capacitance?

550 / 564

Category: Units of capacitance

550. (A) The capacitance of a parallel plate capacitor increases when a dielectric is inserted between the plates even if the charge on the plates remains constant.

(R) The potential difference across the plates decreases when a dielectric is introduced because the electric field inside the dielectric reduces.

551 / 564

Category: Capacitors in parallel

551. What is the equivalent capacitance when three capacitors of 2 $\mu$F, 4 $\mu$F, and 6 $\mu$F are connected in parallel?

552 / 564

Category: Area of the plates

552. (A) If the area $A$ of the plates of a parallel-plate capacitor is doubled while keeping the separation $d$ and permittivity $\varepsilon_0$ constant, the capacitance will also double.
(R) The capacitance $C$ of a parallel-plate capacitor is directly proportional to the area $A$ of its plates as given by $C = \frac{\varepsilon_0 A}{d}$.

553 / 564

Category: Free and Bound Charges Inside a Conductor

553. (A) In a conductor, the bound charges are immobile.
(R) The bound charges in a conductor consist of nuclei and tightly bound inner-shell electrons.

554 / 564

Category: Electric Potential Energy:

554. Two conductors with capacitances $C_1 = 4 \mu F$ and $C_2 = 6 \mu F$ are initially charged to potentials $V_1 = 200 V$ and $V_2 = 100 V$ respectively. They are then connected together. What is the loss of energy during redistribution of charges?

555 / 564

Category: Formula for capacitance of a spherical conductor

555. (A) The capacitance of an isolated spherical conductor increases when its radius increases.
(R) The capacitance $C$ of a spherical conductor is directly proportional to its radius $a$, as given by the formula $C = 4 \pi \epsilon_0 a$.

556 / 564

Category: Concept of conduction and polarization

556. A dielectric slab is inserted between the plates of a charged parallel-plate capacitor. How does the electric field inside the dielectric compare to the original field $E_0$ in the vacuum, and what causes this change?

557 / 564

Category: Work done in charging the capacitor

557. A parallel-plate capacitor has plates of area $A$ separated by a distance $d$. If the electric field between the plates is $E$, what is the energy density (energy per unit volume) stored in the capacitor?

558 / 564

Category: Work done in charging the capacitor

558. A battery supplies a charge $Q$ to a capacitor at a constant potential difference $V$. What percentage of the energy supplied by the battery is stored in the capacitor?

559 / 564

Category: Capacitance with Dielectric Slab Inserted

559. A parallel-plate capacitor with plate area $A = 1 \, \text{m}^2$ and separation $d = 5 \, \text{mm}$ has two dielectric slabs inserted: one with thickness $t_1 = 3 \, \text{mm}$ and dielectric constant $K_1 = 4$, and another with thickness $t_2 = 2 \, \text{mm}$ and dielectric constant $K_2 = 6$. The capacitor is charged to a potential difference of $V_0 = 100 \, \text{V}$ and then disconnected from the battery. What is the final energy stored in the capacitor?

560 / 564

Category: Definition of capacitance

560. What is the SI unit of capacitance?

561 / 564

Category: Area of the plates

561. A parallel-plate capacitor has an area of $100$ cm$^2$ and a distance between plates of $1 \times 10^{-3}$ m. What is its capacitance if $\varepsilon_0 = 8.85 \times 10^{-12}$ F/m?

562 / 564

Category: Applications and Special Cases

562. A parallel plate capacitor has a plate area $A$ and separation $d$. A metallic slab of thickness $t = \frac{d}{4}$ is inserted between the plates. How does the new capacitance compare to the original capacitance $C_0$?

563 / 564

Category: Conductors and Insulators

563. (A) The capacitance of a parallel-plate capacitor increases when a dielectric material with high dielectric constant $K$ is introduced between its plates.

(R) The dielectric material reduces the electric field between the plates, thereby decreasing the potential difference for the same charge, which increases the capacitance.

564 / 564

Category: Relation between charge, potential, and capacitance

564. (A) The capacitance of a parallel-plate capacitor increases if the distance between the plates is decreased.
(R) Capacitance is inversely proportional to the distance between the plates.

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