The emf of a Daniell cell at 298 K is E(...

The emf of a Daniell cell at `298 K` is `E_(1)`
`Zn|ZnSO_(4)(0.01 M)||CuSO_(4)(1.0M)|Cu`
When the concentration of `ZNSO_(4)` is `1.0 M` and that of `CuSO_(4)` is `0.01 M`, the `emf` changed to `E_(2)`. What is the relationship between `E_(1)` and `E(2)` ?

A

`E_(1) = E_(2)`

B

`E_(1) = 0 ne E_(2)`

C

`E_(1) gt E_(2)`

D

`E_(1) lt E_(2)`

Text Solution

Verified by Experts

The correct Answer is:

C

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