When solid lead iodide is added to water, the equilibrium concentration of `I^(-)` becomes `2.6 xx 10^(-3)M` . What is the `K_(sp)` for `PbI_(2)` ?A. `2.2 xx 10^(-9)`B. `8.8 xx 10^(-9)`C. `1.8 xx 10^(-8)`D. `3.5 xx 10^(-8)`

When solid lead iodide is added to water, the equilibrium concentratio

1.	When solid lead iodide is added to water, the equilibrium concentration of `I^(-)` becomes `2.6 xx 10^(-3)M` . What is the `K_(sp)` for `PbI_(2)` ?A. `2.2 xx 10^(-9)`B. `8.8 xx 10^(-9)`C. `1.8 xx 10^(-8)`D. `3.5 xx 10^(-8)`
Answer» Correct Answer - B `PbI_(2) hArr Pb^(2+)+2I^(-)` On the basis of this equation, the concentration `Pb^(2+)` ions will be half of the concentration of `I^(-)` ions . Thus, `[I^(-)]=2.6 xx 10^(-3)M` and `[Pb^(2+0]=1.3 xx 10^(-3)M` `:. K_(sp)=[Pb^(2+)][I^(-)]^(2)` `=(1.3 xx 10^(-3))xx (2.6 xx 10^(-3))^(2) =8.8 xx 10^(-9)`

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