For a cell involving one electron `E_(cell)^(0)=0.59V` and 298K, the equilibrium constant for the cell reaction is: [Given that `(2.303RT)/(F)=0.059V` at `T=298K`]A. `1.0xx10^(30)`B. `1.0xx10^(2)`C. `1.0xx10^(5)`D. `1.0xx10^(10)`

For a cell involving one electron `E_(cell)^(0)=0.59V` and 298K, the e

1.	For a cell involving one electron `E_(cell)^(0)=0.59V` and 298K, the equilibrium constant for the cell reaction is: [Given that `(2.303RT)/(F)=0.059V` at `T=298K`]A. `1.0xx10^(30)`B. `1.0xx10^(2)`C. `1.0xx10^(5)`D. `1.0xx10^(10)`
Answer» Correct Answer - D Nearest equation `E_(cell)^(ɵ)=E_(cell)^(ɵ)(-0.059)/(n)logQ_(C)` At equilibrium Ecell `=0,Q_(C)=K_(C)` `E_(cell)^(ɵ)=(-0.059)/(n)logK_(C)" Value of "E_(cell)^(ɵ)=0.59V` `0.59=(0.059)/(1)logK_(C)" value of "n=1` `K_(C)="antilog "10` `K_(C)=1xx10^(10)`

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For a cell involving one electron `E_(cell)^(0)=0.59V` and 298K, the equilibrium constant for the cell reaction is: [Given that `(2.303RT)/(F)=0.059V` at `T=298K`]A. `1.0xx10^(30)`B. `1.0xx10^(2)`C. `1.0xx10^(5)`D. `1.0xx10^(10)`

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