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. 0.38VB. 0.52VC. 0.90 VD. 0.30V

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. 0.38VB. 0.52VC. 0.90 VD. 0.30V
Answer» Correct Answer - B `Cu^(2+) +2e^(-) to Cu` `E^(@) =0.337V ` `DeltaG=-nFE_("cell")^(@)` `=-2xx F xx 0.337` `=-0.674` `Cu^(2+) to Cu^(2+) +e^(-)` `E^(@) =-0.153V ` `Delta G=+1 xx F xx 0.153` Final ` Cu^(+) +e^(-) to Cu` `DeltaG=-0.52 V` `DeltaG=-nFE_("cell")^(@)` `E_("cell")^(@)=0.52V`

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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. 0.38VB. 0.52VC. 0.90 VD. 0.30V

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