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Chemistry
The relationship between standard reduction potential of a cell and equilibrium constant is shown by
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Q. The relationship between standard reduction potential of a cell and equilibrium constant is shown by
JIPMER
JIPMER 2019
Electrochemistry
A
$E^{\circ}_{cell}=\frac{n}{0.059} log\,K_{c}$
10%
B
$E^{\circ}_{cell}=\frac{0.059}{n} log\,K_{c}$
74%
C
$E^{\circ}_{cell}=$ 0.059 nlogK
c
5%
D
$E^{\circ}_{cell}=\frac{log\, K_{c}}{n}$
10%
Solution:
At equilibrium $E _{\text {cell }}=0$.
$ E _{c e l l}=\frac{0.059}{\Omega} \log K _{ c } $