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Easy · Level 1 · conductors,insulators,electric charge,Conductors and Insulators,Chapter1: Electric Charges and Fields,chapter1 electric charges and fields,Physics,Class 12 MCQView options
Conductor
Insulator
Neutral object
Magnet
Easy · Level 1 · insulators,charge mobility,electrical materials,Conductors and Insulators,Chapter1: Electric Charges and Fields,chapter1 electric charges and fields,Physics,Class 12 MCQView options
Conductor
Insulator
Metal
Earthing
Easy · Level 1 · copper,conductivity,free electrons,Conductors and Insulators,Chapter1: Electric Charges and Fields,chapter1 electric charges and fields,Physics,Class 12 MCQView options
Rubber
Glass
Copper
Dry wood
Easy · Level 1 · rubber,insulators,conductors,Conductors and Insulators,Chapter1: Electric Charges and Fields,chapter1 electric charges and fields,Physics,Class 12 MCQView options
Silver
Copper
Iron
Rubber
Easy · Level 1 · electric charges,conductors,metals,delocalized electrons,electric currentView options
Because it has delocalized (mobile) valence electrons
Because all its electrons are tightly bound to the nucleus
Because its positive ions flow rapidly in an electric field
Because it completely eliminates the electric field
Easy · Level 1 · electric charges,conductors,insulators,free electrons,metalsView options
Dry glass
Rubber
Metal
Plastic
Easy · Level 1 · conductors,insulators,dry wood,electrical conductivity,Conductors and Insulators,Chapter1: Electric Charges and Fields,chapter1 electric charges and fields,PhysicsView options
Conductor
Superconductor
Semiconductor
Insulator
Easy · Level 1 · conductors,insulators,copper,free electrons,Conductors and Insulators,Chapter1: Electric Charges and Fields,chapter1 electric charges and fields,PhysicsView options
Copper
Rubber
Glass
Plastic
Easy · Level 1 · earthing,charge reservoir,electric potential,conductors,Conductors and Insulators,Chapter1: Electric Charges and Fields,chapter1 electric charges and fields,PhysicsView options
Because the electric potential inside the conductor is zero
Because no free charges remain in the conductor
Because the electric field inside the conductor is zero
Because the conductor becomes an insulator
Easy · Level 1 · insulators,localized charge,free charge carriers,electrostatics,Conductors and Insulators,Chapter1: Electric Charges and Fields,chapter1 electric charges and fields,PhysicsView options
Because it has few free charge carriers
Because it is always a metal
Because its colour is dark
Because it has no gravity
Easy · Level 1 · metal sphere,surface charge,electrostatic equilibrium,conductors,Conductors and Insulators,Chapter1: Electric Charges and Fields,chapter1 electric charges and fields,PhysicsView options
For safety, because plastic is an electrical insulator
To increase the current in the wire
Easy · Level 1 · conductors,insulators,copper wire,electric current,Conductors and Insulators,Chapter1: Electric Charges and Fields,chapter1 electric charges and fields,PhysicsView options
Rubber slipper
Plastic box
Glass rod
Copper wire
Easy · Level 1 · electrical safety,plastic insulation,conductors,insulators,Conductors and Insulators,Chapter1: Electric Charges and Fields,chapter1 electric charges and fields,PhysicsView options
Plastic covering on an electric wire
Copper wire
Iron rod
Silver strip
Question 1EasyLevel 1
A material in which electric charges can move easily is called what?
Correct answer: A
The governing concept is electrical conductivity: a conductor contains mobile charge carriers, such as free electrons in metals, that can respond and move when an electric field is applied. Therefore, option A, conductor, is correct. An insulator restricts charge movement; a neutral object describes net charge, not conductivity; and a magnet is defined by magnetic properties, not by easy electric-charge motion.
An object in which charge cannot move easily is called what?
Correct answer: B
The governing idea is resistance to movement of charge. An insulator has tightly bound electrons or otherwise lacks mobile charge carriers, so electric charge cannot move through it easily; rubber, glass, and dry plastic are familiar examples. Thus option B is correct. A conductor permits charge movement, metal is a broad material category, and earthing is a safety connection rather than a material type.
Which of the following materials is generally a good conductor of electricity?
Correct answer: C
Electrical conduction depends on the availability of mobile charge carriers. Copper is a metal whose electrons can move through the material when an electric field is applied, giving it high conductivity and making it widely useful in wires. Option C is therefore correct. Rubber, glass, and dry wood generally have strongly bound electrons and offer much greater resistance, so they are treated as insulators in this context.
Which of the following materials is generally an electrical insulator?
Correct answer: D
An electrical insulator has very few mobile charge carriers under ordinary conditions, so it strongly resists the flow of current. Rubber fits this description and is commonly used to cover wires for protection. Therefore, option D is correct. Silver, copper, and iron are metals containing mobile electrons and are generally conductors, although their conductivities differ. The word generally appropriately refers to normal conditions.
Why is a metal generally a good conductor when an electric field is applied to it?
Correct answer: A
In metals, valence electrons are not tightly bound to individual atoms; they are delocalized and can move through the lattice. When an electric field is applied, these electrons acquire a directed drift and produce electric current. In contrast, the positive ions of a solid metal remain at their lattice positions and are not the main carriers of current.
Why does electric charge not flow easily through insulating materials?
Correct answer: B
In insulators, electrons are tightly bound to their atoms. Therefore, there are very few free, mobile charge carriers, so charge cannot move easily through the material when an electric field is applied. In contrast, conductors have many free electrons, allowing charge to flow readily.
In electrostatic equilibrium, where does the excess charge on an isolated conductor lie if there is no charge inside any cavity of the conductor?
Correct answer: A
In electrostatic equilibrium, the electric field within the conducting material is zero. If excess charge remained in the volume of the conductor, it would produce an internal electric field and free charges would continue to move. Therefore, when no charge is present inside a cavity, the excess charge resides on the outer surface of the conductor. Charge may be induced on an inner surface only when a charge is placed inside the cavity.
In electrostatic equilibrium, where does the excess charge given to an isolated conductor reside?
Correct answer: D
In electrostatic equilibrium, the electric field inside a conductor is zero. If excess charge remained in the interior, it would produce an electric field and free charges would continue moving until equilibrium was reached. Therefore, the excess charge on an isolated conductor resides on its outer surface, not uniformly throughout its volume.
What is the main basis of difference between conductors and insulators?
Correct answer: A
Conductors have free electrons or other free charge carriers that can move easily when an electric field is applied. In insulators, such charge carriers are very few or tightly bound, so they allow very little electric current to flow. Mass, melting point, and colour may be properties of materials, but they do not define the main difference between conductors and insulators.
When rubbed with dry hair, a plastic comb can acquire and retain static charge because plastic is generally what type of material?
Correct answer: B
Rubbing can transfer electrons between the hair and the plastic. Plastic is generally an insulator, so the acquired charge cannot move freely through it and can remain on the comb. In contrast, charge moves more easily in a conductor and may spread away or flow to Earth.
In which material do free electrons move most easily?
Correct answer: C
In metals, some electrons are loosely bound and delocalised, so they can move easily through the metallic lattice. Hence, they carry electric charge through the material. In contrast, electrons in glass, rubber, and plastic are tightly bound and generally cannot move freely.
Dry wood generally behaves as which type of material?
Correct answer: D
The governing concept is the availability of mobile charge carriers. Dry wood contains very few freely moving electrons or ions, so an applied electric field produces only a negligible current. Therefore, it generally behaves as an insulator, making option D correct. Copper is a conductor, a superconductor requires special low-temperature conditions, and dry wood is not normally classified as a semiconductor. Moisture may increase wood’s conductivity.
Which of the following materials is a good conductor of electricity?
Correct answer: A
The governing concept is electrical conductivity, which depends on the presence of mobile charge carriers. Copper contains loosely bound electrons that can drift through the metal when an electric field is applied, so it conducts current well and option A is correct. Rubber, glass, and plastic hold their charges much more tightly and generally act as insulators. Thus the distractors do not permit easy charge flow under ordinary conditions.
The governing idea is that the Earth has an enormous size and capacitance compared with ordinary objects. It can accept or supply a large amount of charge while its electric potential changes negligibly, so it is treated as a large charge reservoir. Hence option B is correct. It is not a small conductor, a perfect insulator, or a magnet; those descriptions do not explain the function of earthing.
Why is there no net directed motion of free charges inside a conductor in electrostatic equilibrium?
Correct answer: C
In electrostatic equilibrium, the electric field inside a conductor is zero. Therefore, free charges experience no electric force and have no net directed drift. They may still have random thermal motion, but this is not a net motion caused by an electric field. Option A is incorrect because the potential inside a conductor is constant, but it is not necessarily zero.
Why does charge placed on an insulator generally not spread easily throughout it?
Correct answer: A
The governing concept is charge mobility in a material. In an insulator, electrons are strongly bound to atoms or molecules, and there are very few mobile carriers available to transport excess charge over macroscopic distances. Consequently, deposited charge usually remains localized, so option A is correct. Being a metal would describe a conductor, while colour and gravity have no relevant role in the spreading of electric charge.
When a metal sphere is charged, where does the excess charge spread in electrostatic equilibrium?
Correct answer: B
The governing concept is electrostatic equilibrium in a conductor. Free electrons in a metal move until the electric field inside the conducting material becomes zero. As a result, any excess charge resides on the outer surface of the metal sphere, so option B is correct. Charge does not remain at one arbitrary point, disappear, or stay only inside; for a symmetrical isolated sphere it distributes uniformly over the surface.
Why are electric wires covered with a layer of plastic?
Correct answer: C
The wire usually contains a metal such as copper or aluminium, which conducts electricity. The outer plastic layer is an electrical insulator, so it prevents accidental contact with the conducting metal and reduces the risk of electric shock. Plastic is used to insulate the wire, not to increase the current.
Which of the following objects uses an electrical conductor?
Correct answer: D
The governing concept is the use of a low-resistance conducting path in an electrical device. A copper wire contains mobile electrons, allowing current to pass efficiently, so option D is correct. Rubber, plastic, and glass are generally insulators and are selected because they restrict charge flow rather than carry it. A copper wire may also be covered by an insulator for safety, but the metal core is the conductor.
Which example uses an insulator for electrical safety?
Correct answer: A
The governing safety principle is electrical insulation: a material with very few mobile charge carriers prevents current from reaching a person. Plastic surrounding a live wire provides a high-resistance barrier, so option A is correct. Copper, iron, and silver are metals with mobile electrons and are conductors; they are useful for carrying current but are not suitable as exposed insulating coverings. The plastic must remain intact and properly rated.
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