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The efficiency of a hypothetical cell is about `84%` which involves the following reactions: `A(s) + B^(2+)(aq) rightarrow A^(2+)(aq) _ B(s)` `DeltaH = -285kJ` Then, the standard electrode potential of the cell will be: (Asume `DeltaS = 0)A. 1.20 VB. 2.40 VC. 1.10 VD. 1.24 V |
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Answer» Correct Answer - D Efficiency `= (Delta G^(@))/(Delta H^(@)) = (-nFE^(@))/(Delta H^(@))` `0.84 = - (2 xx E^(@) xx 96500)/(-285 xx 1000)` `E^(@) = + 1.24 V` |
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