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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 Why is electric discharge more likely near a sharp tip of a charged conductor?
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Answer and explanation
Correct answer: A. Because a higher surface charge density at the sharp tip can produce a very strong electric field that ionises the surrounding air.
Explanation: At a sharp tip of a charged conductor, the surface charge density is relatively high. Therefore, the electric field near the tip can become very strong. This strong field can ionise nearby air molecules; the air begins to conduct, so corona or electric discharge may occur. Unlike option B, the electric field at a sharp tip is not zero; it is generally stronger.
02 A completely enclosed cavity inside a conductor contains no charge, and the conductor is in electrostatic equilibrium. If an external electrostatic field is applied outside the conductor, what is the electric field inside the cavity?
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Answer and explanation
Correct answer: A. The electric field inside the cavity is zero.
Explanation: In electrostatic equilibrium, free charges redistribute so that the electric field within the conducting material is zero. The inner surface of the cavity is an equipotential surface. Since there is no charge in the cavity, the potential throughout it is constant, so the electric field in the cavity is zero. Grounding is not required; therefore, option D is incorrect.
03 Why are sensitive electrical devices placed inside a closed metal enclosure?
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Answer and explanation
Correct answer: A. To shield them from external electrostatic fields
Explanation: In a closed conducting enclosure, free charges redistribute in response to an external electric field. In electrostatic equilibrium, the induced charges produce a field that makes the electric field inside the enclosure zero. Thus, the devices are shielded from external electrostatic fields; the enclosure is not primarily used to block light or increase the device's mass.
04 Which sequence correctly charges an initially neutral metal sphere permanently by induction?
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Answer and explanation
Correct answer: A. Bring a charged object near the sphere, ground the sphere, disconnect it from earth while the charged object remains nearby, and then remove the charged object.
Explanation: Option A is correct. When a charged object is brought near the neutral conducting sphere, charges in the sphere separate. Grounding allows electrons to flow between the earth and the sphere. Disconnecting the earth connection while the charged object is still nearby leaves a net charge on the sphere; after the charged object is removed, that charge spreads over the sphere. The final charge on the sphere is opposite in sign to that of the inducing object. In option B, the inducing object is removed before the earth connection is broken, so the sphere becomes neutral again.
05 Why is it not necessary to touch a charged object to a metal conductor while charging it by induction?
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Answer and explanation
Correct answer: A. Because the electric field of the charged object separates charges in the conductor, and grounding allows charge to flow.
Explanation: When a charged object is brought near a conductor, its electric field redistributes the conductor’s free charges. If the conductor is then grounded, electrons can flow either from Earth to the conductor or from the conductor to Earth. Removing the ground connection first and then removing the charged object leaves the conductor with a net charge, usually opposite to that of the inducing object. Thus, direct contact with the charged object is not required; direct contact is required in charging by conduction.
06 When an isolated neutral conductor is brought near a charged object, induced positive and negative charges appear on its opposite sides. If no charge is transferred to or from the conductor, what is its net charge?
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Answer and explanation
Correct answer: A. Zero
Explanation: In electrostatic induction, the conductor’s free charges only redistribute: excess electrons make one side negative, while a deficiency of electrons makes the other side positive. Since the conductor is isolated and no charge enters or leaves it, its total charge cannot change. It was initially neutral, so its net charge remains zero. A positive or negative net charge could result only if the conductor were grounded or charge were transferred to or from it.
07 What is the main difference between charging a conductor by contact and charging it by induction?
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Answer and explanation
Correct answer: A. In contact charging, a charged body touches the conductor and charge is transferred; in induction, charges redistribute without contact, and earthing is used to give the conductor a net charge.
Explanation: In contact charging, the charged body touches the conductor, so electrons or charge are transferred directly. In induction, bringing a charged body near the conductor redistributes charges within it without contact. To leave the conductor with a permanent net charge, it is usually earthed; the conductor then retains a charge opposite in type to the inducing body. Unlike option D, no direct charge transfer from the inducing body occurs in induction.
08 The electric field inside a conductor is zero. What is the electric force on a free charge placed inside it?
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Answer and explanation
Correct answer: A. Zero
Explanation: Electric force is given by \(\vec{F}=q\vec{E}\). Since \(\vec{E}=0\) inside the conductor, for any finite free charge \(q\), \(\vec{F}=0\). The sign of a charge can affect the direction of force, but here the electric field itself is zero, so the force is zero.
09 If there is a potential difference inside a conductor, what will free charges do?
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Answer and explanation
Correct answer: A. They will move until the potential difference ends
Explanation: The governing concept is electrostatic equilibrium. A potential difference within a conductor indicates an electric field, since the field is related to the spatial change of potential. Free charges experience electric force and redistribute through the conductor. In the ideal equilibrium state, the interior becomes equipotential and the electric field inside is zero. Therefore A is correct; charges do not disappear or merely remain still, and colour has no physical relevance here.
10 Why can an insulator become charged even though very little sustained current flows through it?
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Answer and explanation
Correct answer: A. Rubbing can transfer electrons, and low charge mobility keeps the charge localized.
Explanation: During rubbing, electrons can transfer between two surfaces, leaving the insulator with a net charge. In an insulator, charge carriers have very low mobility, so the transferred charge cannot move easily through the material and may remain localized. In contrast, free electrons move much more easily in a conductor, so charge is redistributed quickly.
11 What is the main benefit of placing a conductor on an insulating stand?
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Answer and explanation
Correct answer: A. Leakage of charge from the conductor to Earth is reduced
Explanation: An insulating stand provides a very high-resistance path between the conductor and Earth. Therefore, charge given to the conductor cannot easily flow to Earth, so charge leakage is reduced. In contrast, an insulating stand neither changes the conductor’s mass nor destroys its charge.
12 In which situation does a charged conductor lose its charge rapidly?
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Answer and explanation
Correct answer: A. When it is connected to Earth by a conducting wire
Explanation: Connecting the conductor to Earth through a conducting wire provides a conducting path; this is called earthing. Excess charge flows to Earth, so the conductor is discharged rapidly and becomes neutral. In contrast, an insulating rod or dry glass does not provide an effective conducting path for charge to flow away.
13 Why are properly voltage-rated, dry, and undamaged rubber gloves safer than metal gloves during electrical work?
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Answer and explanation
Correct answer: A. Rubber provides high electrical resistance and reduces current through the body, whereas metal can provide a low-resistance path for current.
Explanation: Properly rated, dry, undamaged rubber is an electrical insulator with very high resistance. Therefore, if a person accidentally touches a live conductor, rubber gloves greatly reduce the current that can pass through the body. In contrast, metals contain free electrons and have low resistance, so a metal glove can provide a conducting path for current. Option B is incorrect because rubber is protective due to its high, not low, resistance.
14 If the net charge on a conductor is zero, can charge separation by induction still occur?
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Answer and explanation
Correct answer: A. Yes, because free electrons can redistribute while the net charge remains zero.
Explanation: In a neutral conductor, the total positive and negative charges are equal, so its net charge is zero. When a charged object is brought nearby, free electrons move from one region to another due to attraction or repulsion, whereas the positive ion lattice generally remains fixed. Thus, opposite charges can appear on different regions of the conductor while its total charge remains zero. Option B is incorrect because neutrality does not mean the absence of charged particles; it means that positive and negative charges balance overall.
15 In electrostatic equilibrium, free charges inside a conductor have no net directed drift. What does this imply about the electric field in the interior of the conductor?
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Answer and explanation
Correct answer: A. The electric field is zero in the interior of the conductor.
Explanation: In electrostatic equilibrium, free charges have redistributed on the conductor’s surface. If the electric field inside were non-zero, free charges would experience an electric force and produce a net directed drift. Therefore, the electric field in the interior of the conductor is zero. Charges may still have microscopic random thermal motion, but this does not constitute net directed drift.
16 If two identical metal spheres are brought into contact, how can charge behave?
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Answer and explanation
Correct answer: A. Charge can distribute between them
Explanation: The governing concept is charge redistribution in connected conductors. When identical metal spheres touch, free charges can move across their common contact until both reach the same electric potential. If their initial total charge is Q and the arrangement is symmetric, the final charge is typically Q/2 on each sphere, subject to the stated conditions. Thus option A is correct. Charge is conserved, it does not remain confined to the first sphere, and contact does not turn metals into insulators.
17 Why can an insulator not generally be treated as equipotential like a metal in electrostatic equilibrium?
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Answer and explanation
Correct answer: A. Because charges in an insulator cannot redistribute freely.
Explanation: In a metal, free electrons redistribute in response to an electric field. At electrostatic equilibrium, this redistribution makes the electric field inside a conductor zero, so the conductor is equipotential. In an insulator, charges are mostly bound to atoms or molecules and cannot redistribute freely throughout the material. Therefore, an electric field and a potential difference can generally remain inside an insulator. Option B is a property of a conductor in electrostatic equilibrium, not of an insulator.
18 What phenomenon can occur when an insulator is placed in an external electric field?
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Answer and explanation
Correct answer: A. Its bound positive and negative charges undergo slight displacement, producing polarization
Explanation: In an insulator, charges are normally bound and cannot move freely through the material as they do in a conductor. When an external electric field is applied, the centres of bound positive and negative charges undergo a very small relative displacement, so the insulator becomes polarized. This is polarization, not a sustained electric current; therefore, option C is incorrect.
19 Which combination is correct for constructing a safe electrical wire that must carry current and also protect the user from electric shock?
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Answer and explanation
Correct answer: A. Copper for the inner wire and rubber for the outer covering
Explanation: Copper has many free electrons, so it has low resistance and allows electric current to flow readily. Rubber has very high resistance, so it forms an insulating outer covering that reduces current leakage and the risk of electric shock. In option B, the conducting copper surface would be exposed to the user, while rubber in the core would not carry current effectively.
20 In electrostatic equilibrium, the electric field in the interior of a conductor is zero. What is the value of the electric-field energy density there?
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Answer and explanation
Correct answer: A. Zero
Explanation: The electric-field energy density is \(u=\frac{1}{2}\varepsilon E^2\). In electrostatic equilibrium, \(E=0\) in the interior of a conductor, so \(u=0\). The conductor may have a non-zero electric potential, but energy density depends on the electric field rather than on the potential itself; hence option D is not correct.
21 Why can the charge distribution in a conductor depend on the shape of the object?
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Answer and explanation
Correct answer: A. Because surface curvature affects the local surface charge density.
Explanation: In electrostatic equilibrium, free charges redistribute so that the electric field inside the conductor becomes zero. When different parts of the surface have different curvatures, different local surface charge densities may be required to maintain this equilibrium. Generally, charge density is greater near sharp or highly curved regions. In contrast, a symmetric conductor such as a sphere has uniform surface charge density, but this is not true for every shape.
22 Charge on the outer surface of a charged conductor indicates what?
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Answer and explanation
Correct answer: A. Free charges have spread to the surface in equilibrium
Explanation: The governing concept is electrostatic equilibrium in conductors. Because free charges can move, mutual repulsion redistributes any excess charge until the electric field inside the conducting material becomes zero. The excess charge therefore resides on the outer surface, although charge may also occur on an inner surface if a cavity contains charge. Thus A is correct; the other options contradict charge conservation or the conducting nature of the material.
23 Which main idea in electrostatics is strengthened by studying conductors and insulators?
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Answer and explanation
Correct answer: A. Motion and distribution of charges depend on the nature of material
Explanation: The governing idea is that material properties control the mobility of charge. In conductors, many electrons are relatively free to move, so charge can redistribute and reach electrostatic equilibrium. In insulators, charges are more tightly bound and usually remain localized, though polarization can occur. Therefore A correctly connects material nature with charge motion and distribution. Colour, mass alone, and equal conduction do not explain this distinction.
24 What is the main reason that the electric field inside a conductor is zero in electrostatic equilibrium?
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Answer and explanation
Correct answer: A. Free charges in the conductor redistribute so as to make the electric field inside zero.
Explanation: Free charges in a conductor can move. If an electric field existed inside the conductor, it would cause these charges to move; therefore, they redistribute until the field produced by the redistributed charges cancels the field within the conductor. Hence, in electrostatic equilibrium, the net electric field inside a conductor is zero. Option B is incorrect because a conductor may be charged.
25 When an isolated conductor is given excess charge, why does the charge reside on its outer surface in electrostatic equilibrium?
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Answer and explanation
Correct answer: B. Because free charges redistribute until the electric field inside the conductor becomes zero; hence excess charge remains on the outer surface.
Explanation: Free charges in a conductor can move. If an electric field existed inside the conductor, it would exert a force on these charges and keep them moving. Therefore, in electrostatic equilibrium, the electric field inside the conductor must be zero. Charges redistribute until this condition is reached, leaving the excess charge on the outer surface. Option D is incorrect because electric force does act on free charges before equilibrium; it becomes zero only after the internal electric field becomes zero.
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