The solubility product of `BaCrO_(4)` is `2.4xx10^(-10)M^(2)`. The maximum concentration of `Ba(N0_(3))_(2)` possible without precipitation in a `6xx10^(-4)` M `K_(2)CrO_(4)` solution is :A. `4xx10^(-7) M`B. `1.2 xx 10^(-10)` MC. `6xx10^(-4)` MD. `3xx10^(-4)M`.

The solubility product of `BaCrO_(4)` is `2.4xx10^(-10)M^(2)`. The max

1.	The solubility product of `BaCrO_(4)` is `2.4xx10^(-10)M^(2)`. The maximum concentration of `Ba(N0_(3))_(2)` possible without precipitation in a `6xx10^(-4)` M `K_(2)CrO_(4)` solution is :A. `4xx10^(-7) M`B. `1.2 xx 10^(-10)` MC. `6xx10^(-4)` MD. `3xx10^(-4)M`.
Answer» Correct Answer - A `[Ba^(2+)][CrO_(4)^(2-)]=K_(sp)` `[Ba^(2+)]=K_(sp)//[CrO_(4)^(2-)]` `[CrO_(4)^(2-)]=[K_(2)CrO_(4)]=6xx10^(-4)M` `=(2.4 xx 10^(-10))/(6 xx 10^(-4))=4 xx 10^(-7)M`

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The solubility product of `BaCrO_(4)` is `2.4xx10^(-10)M^(2)`. The maximum concentration of `Ba(N0_(3))_(2)` possible without precipitation in a `6xx10^(-4)` M `K_(2)CrO_(4)` solution is :A. `4xx10^(-7) M`B. `1.2 xx 10^(-10)` MC. `6xx10^(-4)` MD. `3xx10^(-4)M`.

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