Charges 2q and −3q are given to two identical metal plates of cross-sectional area A. The distance between the plates is d. The capacitance of system and potential difference between plates respectively will be:
A
Aϵ02d,2.5qdϵ0A
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B
2Aϵ0d,qd2ϵ0A
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C
Aϵ0d,2.5qdϵ0A
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D
Aϵ0d,5qdϵ0A
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Solution
The correct option is CAϵ0d,2.5qdϵ0A The charge appearing on outermost faces is given by
qouter=qtotal2
⇒qouter=2q−3q2=−q2
Thus, −q2 will reside at the outermost surfaces.
The charge distribution is shown in the above figure.
Here we can see that the charge on plates facing each other is 2.5q & −2.5q respectively. Thus, they form a parallel plate capacitor.
using formula, Q=CV
⇒2.5q=CV........(1)
Since the area of plates is A and separation between them is d. The capacitance will be,
C=Aϵ0d........(2)
From eqs. (1)&(2)
⇒2.5q=Aϵ0dV
∴V=2.5qdAϵ0
Hence, option (b) is correct.
Why this question ?Tip : The charged appearing on outer faces of the outermost plate isqouter=∑q2=qtotal2This trick is widely used for such problems and it comes as a result of application ofGauss law and charge conservation.