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Question

A capacitor having an initial charge 0.1 C, is discharging in a simple RC circuit with the time constant 3 seconds. How much charge will remain after 6 sec?

A
0.1e2C
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B
0.01e2C
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C
0.1e2C
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D
0.01e2C
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Solution

The correct option is A 0.1e2C
While discharging if an amount of charge q is left on a capacitor after time t,
Then,q=QetRC, where Q is the initial charge on the capacitor at t=0.
Given, time constant=RC=3 s and t=6s,
Charge remaining after 6s, q=0.1e63=0.1e2=0.1e2C.

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