Charges +q and -q are placed at points A...

Charges +q and -q are placed at points A and B respectively which are a distance 2L aprt,C is the mid point between A and B. The work done in moving a charge + Q along the semicircle CRD is

`(qQ)/(4 pi epsilon_(0)L)`

`(qQ)/(2 pi epsilon_(0)L)`

`(qQ)/(6 pi epsilon_(0)L)`

`-(qQ)/(6 pi epsilon_(0)L)`

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The correct Answer is:

Key Idea : Work done is equal to change in potential energy.
In Ist case, when charge +Q is situated at C. Electric potential energy of system in that case

`U_(1)=(1)/(4pi epsilon_(0))((q)(-q))/(2L)+(1)/(4 pi epsilon_(0))((-q)Q)/(L)+(1)/(4 pi epsilon_(0)).(qQ)/(L)`
In IInd case, when charge +Q is moved from C to D
Electric potential energy of system in that case

`U_(2)=(1)/(4piepsilon_(0))((q)(-q))/(2L)+(1)/(4pi epsilon_(0))(qQ)/(3L)+(1)/(4 pi epsilon_(0))((-q)(Q))/(L)`
`:.` Work done `=Delta U = U_(2) - U_(1)`
`=(-(1)/(4pi epsilon_(0))(q^(2))/(2L)+(1)/(4pi epsilon_(0))(qQ)/(3L)-(1)/(4 pi epsilon_(0))(qQ)/(L))`
`-(-(1)/(4 pi epsilon_(0))(q^(2))/(2L)-(1)/(4 pi epsilon_(0)).(qQ)/(L)+(1)/(4 pi epsilon_(0)).(qQ)/(L))`
`=(qQ)/(4 pi epsilon_(0))[(1)/(3L)-(1)/(L)]`
`=c(qQ)/(4 pi epsilon_(0))(((1-3))/(3L))=(-2qQ)/(12 pi epsilon_(0)L)=-(qQ)/(6 pi epsilon_(0)L)`.

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