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In this Class 12 Physics topic from Chapter 1, Electric Charges and Fields, students learn how materials respond to electric charge. They distinguish conductors, which contain mobile charge carriers, from insulators, in which charges are largely bound, and examine charge distribution, electrostatic equilibrium, and polarization. The topic explains why the electric field inside a conductor in electrostatic equilibrium is zero, how excess charge resides on its surface, and how these ideas support electrostatic shielding and everyday applications.
Practice questions
01 What is the purpose of rearrangement of charges in a conductor?
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Answer and explanation
Correct answer: A. To establish electrostatic equilibrium
Explanation: Free charges in a conductor rearrange under the electric field until the resultant electric field inside the conductor becomes zero. This condition is called electrostatic equilibrium. Rearrangement of charge does not increase the conductor’s mass. Exam tip: In electrostatic equilibrium, the electric field inside a conductor is zero.
02 In which material are charge carriers mostly bound to atoms or molecules?
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Answer and explanation
Correct answer: A. Insulator
Explanation: In an insulator, electrons are generally tightly bound to atoms or molecules. Therefore, it has very few free charge carriers and does not conduct electricity easily. A semiconductor can provide some charge carriers on heating or doping, so it differs from an insulator. Exam tip: bound charge carriers are a key feature of insulators.
03 If a charged metal conductor has a sharp point on its surface, what is the electric field like just outside that point?
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Answer and explanation
Correct answer: A. Stronger
Explanation: At a sharp region of a charged conductor, the surface charge density is higher. The magnitude of the electric field just outside the conductor is proportional to the surface charge density, so the field is stronger near the sharp point. In contrast, the electric field inside a conductor in electrostatic equilibrium is zero.
04 Why can the net charge on a charged conductor decrease when it is touched by a grounded person?
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Answer and explanation
Correct answer: A. Charge can flow to Earth through the person's body.
Explanation: A grounded person's body can provide a conducting path between the charged conductor and Earth. Excess charge can therefore flow through the body to Earth, reducing the conductor's net charge. In option B, charge is only redistributed on the conductor's surface, so the conductor's total charge does not decrease.
05 On which material can charge produced by rubbing remain localized for a longer time?
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Answer and explanation
Correct answer: A. Plastic
Explanation: The governing concept is frictional charging and charge mobility. Plastic is an insulator, so electrons transferred during rubbing cannot move freely across its surface; the charge therefore remains localized for a relatively long time in dry conditions. Option A is correct. Copper, silver, and aluminium are metals with mobile electrons, so any excess charge can redistribute rapidly, especially when the object is touched or connected to Earth. Environmental moisture can shorten retention, but it does not change the material classification.
06 Which combination of materials is correct for the conducting core and the outer insulating covering of an electric wire?
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Answer and explanation
Correct answer: A. Copper for the core and rubber for the outer covering
Explanation: The governing concept is the complementary use of a conductor and an insulator. Copper has low resistivity and mobile electrons, so it forms the core and carries current efficiently. Rubber has high resistance and prevents contact with the live conductor, so it is suitable for the protective outer covering. Therefore, option A is correct. Options B, C, and D place insulating materials in the core or conducting metals on the outside, reversing or defeating the required functions.
07 In which phenomenon do free charges in a conductor separate without contact with a charged object?
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Answer and explanation
Correct answer: A. Electrostatic induction
Explanation: In electrostatic induction, a nearby charged object attracts or repels the free charges in a conductor. Thus, charges redistribute and separate into different regions of the conductor without touching it. In charging by friction, contact and rubbing between objects are required.
08 Why is polarisation a more suitable term than induction for an insulator?
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Answer and explanation
Correct answer: A. Because bound charges only shift slightly in it
Explanation: The governing concept is the response of bound charges to an external electric field. In an insulator, positive and negative charges remain attached to their atoms or molecules; they shift slightly in opposite directions rather than travelling through the material. This separation produces induced dipoles and is accurately called polarisation, so option A is correct. In ordinary electrostatic induction of a conductor, free charges redistribute over macroscopic distances. Charges are neither completely free in an insulator nor destroyed.
09 What is the benefit of placing a sensitive device inside a hollow conductor?
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Answer and explanation
Correct answer: A. It can get protection from external electrostatic effects
Explanation: The governing concept is electrostatic shielding. In a conductor at electrostatic equilibrium, excess charge resides on its outer surface and the electric field inside a closed hollow conducting enclosure is ideally zero when no charge is placed inside. Therefore, a sensitive instrument inside can be protected from external static electric fields. The other options concern mass, light production, or material type, none of which follows from enclosing the device in a conductor.
10 If a piece of metal is placed on an insulating stand why can charge remain for a longer time?
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Answer and explanation
Correct answer: A. Because the path for charge leakage to earth is blocked
Explanation: A metal has free electrons, so charge can move through it easily. If the metal has a conducting path to earth, charge may leak away to the earth. An insulating stand offers very high resistance and prevents this leakage path, so the charge remains on the metal for a longer time. The metal itself does not become an insulator. Exam tip: A charged conductor is placed on an insulating stand to avoid earthing and charge leakage.
11 In electrostatic equilibrium, if an isolated conductor has no charge inside its cavities, which is a correct property of the conductor?
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Answer and explanation
Correct answer: A. Excess charge resides on the outer surface of the conductor
Explanation: In electrostatic equilibrium, free charges redistribute until the electric field within the conducting material becomes zero. Therefore, the conductor is at the same potential throughout, and when there is no charge inside its cavities, the excess charge resides on its outer surface. Hence, option A is correct. Option C is incorrect because the electric field inside the conductor is zero, not maximum.
12 Which option states a correct property of an insulator?
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Answer and explanation
Correct answer: A. Charge carriers are mostly bound
Explanation: An insulator contains very few mobile charge carriers under ordinary conditions. Its electrons are generally tightly bound to atoms or molecules, so an applied electric field produces only a very small current. Hence option A is correct. A large population of free electrons, very low resistance, and easy current flow are characteristic of conductors, so options B, C, and D describe the opposite behaviour.
13 When a conductor is charged, why does the excess charge spread over its outer surface?
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Answer and explanation
Correct answer: A. Because mobile charges of the same kind repel one another and redistribute until equilibrium is reached.
Explanation: Mobile charges can move in a conductor. Because like charges repel, they redistribute until electrostatic equilibrium is reached. In this state, the electric field inside the conductor is zero and the excess charge resides on the outer surface. The distribution need not be uniform; it depends on the conductor’s shape. Unlike option B, the electric field inside a conductor at equilibrium is not large; it is zero.
14 On which material can static electric charge be retained relatively easily?
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Answer and explanation
Correct answer: A. Dry glass
Explanation: Dry glass is an insulator, so the movement of electric charges through it is highly restricted and charge does not leak away easily. In contrast, copper, silver, and aluminium are conductors, in which charge can move readily. The word “dry” is important because moisture can increase charge leakage over the glass surface.
15 If a person's body is connected to Earth, on an object made of which material held in the hand would it be most difficult to retain static charge?
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Answer and explanation
Correct answer: A. Metal
Explanation: Metal is a conductor. When a metal object is held by a person connected to Earth, charge can flow through the hand and body to Earth, making it difficult for the object to retain static charge. Unlike metal, rubber is generally an insulator and can hold charge for longer because charge does not move through it easily.
16 When an initially neutral conductor is placed near a positively charged object, which induced charge appears on the nearer end of the conductor?
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Answer and explanation
Correct answer: A. Negative charge
Explanation: This is electrostatic induction in a conductor. The positive external object attracts the conductor’s mobile electrons, so electrons shift toward the nearer end and that end becomes negatively charged by induction. The farther end is left relatively positive because it loses some electrons. No charge is created overall: the conductor remains neutral, with equal and opposite induced charges separated across its surface. Thus A is correct, while B reverses the attraction and C-D ignore charge separation.
17 If a negatively charged rod is brought near a neutral metal sphere, towards which side will the free electrons in the sphere move?
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Answer and explanation
Correct answer: A. Away from the rod
Explanation: Both the rod and the electrons are negatively charged, so the rod repels the electrons. Since free electrons in a metal can move, they redistribute towards the surface of the sphere away from the rod. This leaves an electron-deficient, induced positive region on the side near the rod; electrons do not move towards the rod because like charges repel.
18 If a positively charged rod is brought near an isolated neutral metal sphere, in which direction will the free electrons in the sphere move?
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Answer and explanation
Correct answer: A. Toward the rod
Explanation: A positively charged rod attracts free electrons, so the electrons in the metal sphere shift toward the side nearer the rod. This is electrostatic induction. The sphere remains neutral overall; only its charges are redistributed. Thus, the electrons do not leave the sphere or remain uniformly distributed.
19 What is the main reason for covering electric wires with rubber?
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Answer and explanation
Correct answer: B. Rubber has very few mobile charge carriers, so it resists the flow of charge.
Explanation: Rubber is an insulator because its charge carriers, such as electrons, cannot move freely. Therefore, it reduces leakage of charge from a wire and helps protect a person touching the covering. In contrast, metals have free electrons that move easily, so they are conductors.
20 Which option correctly corrects a misconception about conductors?
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Answer and explanation
Correct answer: A. Free charges can redistribute in a conductor; therefore, a conductor is equipotential in electrostatic equilibrium.
Explanation: A conductor contains free charges that redistribute until electrostatic equilibrium is reached. In this equilibrium, the electric field inside the conductor is zero, so all points of the conductor are at the same potential; hence, it is equipotential. Unlike option D, the electric field inside a conductor is not maximum but zero.
21 Which statement correctly corrects a common misconception about insulators?
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Answer and explanation
Correct answer: A. An insulator can have charge, but the charge does not spread through it easily.
Explanation: An insulator can be charged by rubbing or by contact. It has very few free charge carriers, so deposited charge generally remains near the region where it is placed rather than spreading easily through the material. An external electric field can polarize an insulator, but polarization does not necessarily involve a transfer of net charge. Therefore, option A is correct, whereas option B is false because an insulator can be charged.
22 What is a direct result of the electric field being zero inside a conductor in electrostatic equilibrium?
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Answer and explanation
Correct answer: A. The net electric force on free charges inside the conductor is zero.
Explanation: In electrostatic equilibrium, the electric field inside a conductor is \(E=0\). Hence, the net electric force on a free charge \(q\) is \(F=qE=0\). Therefore, option A is correct. Option B is incorrect because the potential is the same at all points inside a conductor, but its value is not necessarily zero.
23 What is mainly understood by studying conductors and insulators?
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Answer and explanation
Correct answer: A. Motion and distribution of charges in materials
Explanation: The central idea in studying conductors and insulators is how electric charges behave inside different materials. In conductors, mobile charges can move comparatively freely and redistribute over the surface or through the material. In insulators, charges are largely bound and remain localized, although polarization can occur. Therefore option A captures both charge motion and charge distribution. Options B, C, and D concern unrelated properties of light, sound, and gravitation.
24 Which statement correctly describes the use of conductors and insulators in electric wires?
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Answer and explanation
Correct answer: A. Conductors allow current to flow through the metal part of a wire, while the insulating covering provides safety.
Explanation: In conductors such as copper, free electrons can move easily, so they are used inside wires to allow electric current to flow. Insulators such as plastic or rubber strongly oppose the flow of charge, so they are used as the outer covering of a wire to help prevent electric shock. Option B reverses the roles of conductors and insulators.
25 Why does charge given to an insulator often remain localized?
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Answer and explanation
Correct answer: A. Because charge carriers are mostly bound in it
Explanation: The governing concept is electrical conduction. In an insulator, electrons are strongly bound to atoms or molecules, so charge carriers cannot move freely through the material. When charge is supplied, it therefore tends to remain near the region where it was placed, although polarization may occur. Option A is correct. Option B describes a conductor, option C contradicts the definition of an insulator, and option D is false because electric fields can exist inside insulators.
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