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A parallel plate capacitor is charged fr...

A parallel plate capacitor is charged from a cell and then isolated from it. The separation between the plates is now increased

A

The force of attraction between the plates will decrease

B

The field in the region between the plates will not change

C

The energy stored in the capacitor will increase

D

The potential difference between the plates will decrease

Text Solution

Verified by Experts

The correct Answer is:
B, C
`F=qE=(q)(sigma/(2epsilon_0))=q^2/(2epsilonA)`
`q` remains unchanged. Hence,`F` remains unchanged.
`E=sigma/epsilon_0=q/(Aepsilon_0)`
`q` remains unchanged. Hence, `E` also remains unchanged.
`U=q^2/(2C)` or `Uprop1/C`
`C` will decrease. Hence `U` will increase.
`V=Ed` or `Vpropd`
`d` is increasing. Hence `V` will increase.
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