`pH` of saturated solution of `Ba(OH)_(2)` is `12`. The value of solubility product `(K_(sp))` of `Ba(OH)_(2)` isA. `4.0xx10^(-6)`B. `5.0xx10^(-6)`C. `3.3xx10^(-7)`D. `5.0xx10^(-7)`

`pH` of saturated solution of `Ba(OH)_(2)` is `12`. The value of solub

1.	`pH` of saturated solution of `Ba(OH)_(2)` is `12`. The value of solubility product `(K_(sp))` of `Ba(OH)_(2)` isA. `4.0xx10^(-6)`B. `5.0xx10^(-6)`C. `3.3xx10^(-7)`D. `5.0xx10^(-7)`
Answer» Correct Answer - D `pH=12 :. pOH=2` `:. [OH^(-)]=10^(-2)` Now `Ba(OH)_(2)=Ba^(2+)+2OH^(-)` `:. K_(sp)=[Ba^(2+)][OH^(-)]^(2)` `=[10^(-2)/(2)][10^(-2)]^(2)` `:.[(Ba^(2+))=(1)/(2)xx(OH^(-))]=5xx10^(-7)`

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`pH` of saturated solution of `Ba(OH)_(2)` is `12`. The value of solubility product `(K_(sp))` of `Ba(OH)_(2)` isA. `4.0xx10^(-6)`B. `5.0xx10^(-6)`C. `3.3xx10^(-7)`D. `5.0xx10^(-7)`

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