The emf of the cell `Ag|AgI|CI(0.05M)||AgNO_(3)(0.05M)|Ag` is 0.79 V. Calculate the solubility product of AgI.

The emf of the cell `Ag|AgI|CI(0.05M)||AgNO_(3)(0.05M)|Ag` is 0.79 V.

1.	The emf of the cell `Ag\|AgI\|CI(0.05M)\|\|AgNO_(3)(0.05M)\|Ag` is 0.79 V. Calculate the solubility product of AgI.
Answer» Correct Answer - `K_(SP)=1xx10^(-18)` `AgtoAg_((c))^(+)+e^(-),Cxx(0.05)K_(SP)` `Ag_((0.05M))^(+)+e^(-)toAg` if assume as concentration cell `Ag_((0.05M))^(+)toAg_((c))^(+)` `E=0.79=0-(0.0591)/(1)log((K_(sp))/(5xx10^(-2)xx5xx10^(-2)))` `(K_(SP))/(25xx10^(-4))=4xx10^(-14)impliesK_(SP)=1xx10^(-16)`

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The emf of the cell `Ag|AgI|CI(0.05M)||AgNO_(3)(0.05M)|Ag` is 0.79 V. Calculate the solubility product of AgI.

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