Given: (i) `Cu^(2+)+2e^(-) rarr Cu, E^(@) = 0.337 V` (ii) `Cu^(2+)+e^(-) rarr Cu^(+), E^(@) = 0.153 V` Electrode potential, `E^(@)` for the reaction, `Cu^(+)+e^(-) rarr Cu`, will beA. 0.52 VB. 0.90 VC. 0.30 VD. 0.38 V

Given: (i) `Cu^(2+)+2e^(-) rarr Cu, E^(@) = 0.337 V` (ii) `Cu^(2+)+e^(

1.	Given: (i) `Cu^(2+)+2e^(-) rarr Cu, E^(@) = 0.337 V` (ii) `Cu^(2+)+e^(-) rarr Cu^(+), E^(@) = 0.153 V` Electrode potential, `E^(@)` for the reaction, `Cu^(+)+e^(-) rarr Cu`, will beA. 0.52 VB. 0.90 VC. 0.30 VD. 0.38 V
Answer» Correct Answer - A (a) `DeltaG^(@)=-nFE^(@)` For reaction, `Cu^(2+)+2e^(-) to Cu, ` …(i) `DeltaG^(@)=-2xxFxx0.337` For reaction, `Cu^(+) to Cu^(2+)+e^(-)`, ….(ii) `DeltaG^(@)=-1xxFxx(-0.153)` `=+0.153 F` Adding Eqs. (i) and (ii) , we get `Cu^(+)+e^(-) to Cu, DeltaG^(@)=-0.521 F` `DeltaG^(@)=-nFE^(@)` `:. -0.521 F=-nFE^(@)` `:. E^(@)=0.52 V`

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Given: (i) `Cu^(2+)+2e^(-) rarr Cu, E^(@) = 0.337 V` (ii) `Cu^(2+)+e^(-) rarr Cu^(+), E^(@) = 0.153 V` Electrode potential, `E^(@)` for the reaction, `Cu^(+)+e^(-) rarr Cu`, will beA. 0.52 VB. 0.90 VC. 0.30 VD. 0.38 V

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