The solubility product of AgCI in water is`1.5xx10^(-10)`. Calculate its solubility in `0.01M NaCI`.

The solubility product of AgCI in water is`1.5xx10^(-10)`. Calculate i

1.	The solubility product of AgCI in water is`1.5xx10^(-10)`. Calculate its solubility in `0.01M NaCI`.
Answer» Let the solubility of AgCI in water be S mol `L^(-1)`. `AgCI(s) hArr underset(S)(Ag^(+)(aq)) + underset(S)(CI^(-)(aq))` `NaCI overset((aq))(to) underset(0.01M)(Na^(+) (aq)) +underset(0.01M)(CI^(-) (aq))` `"Now"" "[Ag^(+)]=S , [CI^(-)] =[CI^(-)] " from " AgCI + [CI^(-)] " from " NaCI` `=S + 0.01 ~~ 0.01 ("as" S lt lt 0.01)` `"Now"" "K_(sp) =[Ag^(+)][CI^(-)] " or " 1.5 xx 10^(-10) =S xx 0.01` `S=(1.5 xx 10^(-10))/(0.01) =1.5 xx 10^(-8) "mol "L^(-1)`

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The solubility product of AgCI in water is`1.5xx10^(-10)`. Calculate its solubility in `0.01M NaCI`.

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