Question

What is the ratio of `[Pb^2+]` to `[I^-]` in a saturated solution of `PbI_2`?

Which of the following is true for a saturated solution of lead (II) iodide, a slightly soluble salt?

A. `[Pb^2+] = [I^-]`
B. `[Pb^2+] = K_(sp)`
C. `[Pb^2+] = 0.5[I^-]`
D. `[Pb^2+] = (K_(sp))^(1/2)`
E. `[Pb^2+] = 2[I^-]`

I thought it was (E) but evidently it is (C); it seems trivial but it isn't making sense!

Answer 1

Look at the equilibrium expression....

Explanation:

`PbI_2(s) rightleftharpoonsPb^(2+) + 2I^-`....where `K_"sp"=[Pb^(2+)][I^-]^2`...

Clearly in a solution containing ONLY `PbI_2` as the ion source, `[Pb^(2+)]=1/2[I^-]`...`"option C"` as required.... Claro?

Note that if we were required to calculate the solubility of `PbI_2`, we would get an expression of the form....

`S_"solubility of lead(II) iodide"=""^(3)sqrt(K_"sp"/4)`....