Question

The $K_{sp}$ of $Mg(OH{)}_2$ is $1\times 10^{-12}.0.01MMg(OH{)}_2$ will precipitate at the limited $pH$ of

• A. 3
• B. 9
• C. 5
• D. 8

Answer 1

Answer: (B)

$Mg(OH{)}_2\rightleftharpoons M{g}^{2+}+2O{H}^{-}$
The solubility product,
$K_{sp}\text{ of }Mg(OH{)}_2=[Mg{]}^{2+}{\left[O{H}^{-}\right]}^2$
$1\times 10^{-12}=[0.01]{\left[O{H}^{-}\right]}^2$
${\left[O{H}^{-}\right]}^2=\frac{1\times 10^{-12}}{0.01}=1\times 10^{-10}$
$\left[O{H}^{-}\right]=10^{-5}$
$\because \left[H^{+}\right]\left[O{H}^{-}\right]=10^{-14}$
$\left[H^{+}\right]\left[10^{-5}\right]=10^{-14}$
$\left[H^{+}\right]=\frac{10^{-14}}{10^{-5}}=10^{-9}$
$pH=-\log \left[H^{+}\right]$
$=-\log 10^{-9}=9$