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Question

The capacitance of a capacitor is 10F. The potential difference on it is 50V. If the distance between its plate is halved, What will be the potential difference now?

A
100V
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B
50V
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C
25V
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D
75V
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Solution

The correct option is C 25V
Given, C=10F
V=50V
If the distance between the plate is halved.
C=Aϵ0d
C=2Aϵ0d=2C
Since energy is not dissipated, it remain constant.
The surface charge density (σ) will remain constant.
E=σϵ0[E is also constant]
V=E×d
V=Ed
V=V2=502=25
This shows that V will also get halved.

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