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Question

Find EMF of cell Ni|Ni2+||Au3+|Au
if
Ni2+|Ni; E= 0.25V
Au3+|Au; E = 1.5V




A
1.25 V
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B
-1.25 V
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C
1.75 V
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D
0.83 V
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Solution

The correct option is C 1.75 V
EMF is intensive property hence
Ecell=EcathodeEanode
Since Au will act as cathode and Ni will act as anode
Ecell=1.5(0.25)
Ecell=1.75V






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