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Question

A 60 pF capacitor is fully charged by a 20 V supply. It is then disconnected from the supply and is connected to another uncharged 60 pF capacitor in parallel. The Electrostatic energy that is lost in this process by the time the charge is redistributed between them is (in nJ)

A
6.0
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B
6
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C
6.00
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Solution

In the first condition, electrostatic energy is
Ui=12CV20

Ui=12×60×1012×400

Ui=12×109 J

In the second condition,
Uf=12CV2

As the capacitors are connected in parallel, and have the same capacitance,
C=2C

V=C1V1+C2V2C1+C2

Here, C1=C2=C,V1=V0,V2=0

V=V02

Uf=122C(V02)2

Uf=14×60×1012×(20)2

Uf=6×109 J

Energy lost ΔU=UiUf

ΔU=12×109J6×109J

ΔU=6 nJ

Hence, 6 is the correct answer.

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