Question

The solubility of $CdS{O}_4$ in water is $8.0\times {10}^{–4}$ mol L${}^{–1}$. Its solubility in $0.01M{H}_{2}S{O}_4$ solution is ______× ${10}^{–6}mol{L}^{–1}$. (Round off to the Nearest Integer).
Assume that solubility is much less than 0.01 M.

Answer 1

Answer :64
$CdS{O}_4\left(s\right)\rightleftharpoons \underset{S}{C{d}^{+2}}\left(aq\right)+\underset{S}{S{O}_4^{2-}}\left(aq\right)$

$S=8\times {10}^{-4}{K}_{sp}=S^2=64\times {10}^{-8}$

In $H_{2}S{O}_4$,
$CdS{O}_4\left(s\right)\rightleftharpoons \underset{S}{C{d}^{2+}}+\underset{S+{10}^{-2}}{S{O}_4^{2-}}$

$K_{sp}\left(CdS{O}_4\right)=S(S+{10}^{-2})$
$S+{10}^{-2}\approx {10}^{-2}\because \text{solubility is much less than}0.01M$

$K_{sp}\left(CdS{O}_4\right)=S\times {10}^{-2}$
$64\times {10}^{-8}=S\times {10}^{-2}$
$S=64\times {10}^{-6}$