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The standard emf of a galvanic cell involving 2 moles of electrons in it redox reaction is 0.59 V.The equilibrium constant for the redox reaction of the cell is |
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Answer» `10^(20)` `Zn_(s)+Cu_((aq))^(2+)hArrZn_((aq))^(2+)+Cu_(s)` At the equibrium state the concentration of `Cu^(2+)` and `Zn^(2+)` ions are in equibrium .So `E_(cell)`=0. Then EQUILIBRIUM constant ,`K_(C)` is calculated as `E_(cell)^(@)=(0.059)/(n)logK_(c)` or `0.59=(0.059)/(2)logK_(c)` or `logK_(c)=(0.59xx2)/(0.059)=20` `K_(c)`=antilog 20 =`10^(20)` |
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