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MHT CET · Chemistry · Ionic Equilibrium

What is the \(\mathrm{pH}\) at which \(\mathrm{Mg}(\mathrm{OH})_2\) starts to precipitate from a solution containing \(0.1 \mathrm{M} \mathrm{Mg}^{2+}\) ions? (Given Ksp for \(\mathrm{Mg}(\mathrm{OH})_2=1.0 \times 10^{-11}\) )

  1. A 7
  2. B 4
  3. C 6
  4. D 9
Verified Solution

Answer & Solution

Correct Answer

(D) 9

Step-by-step Solution

Detailed explanation

\(\begin{aligned} & \mathrm{K}_{\mathrm{sp}}=\left(\mathrm{Mg}^{+2}\right)\left[\mathrm{OH}^{-}\right]^2 \\ & 1 \times 10^{-11}=(0.1)\left[\mathrm{OH}^{-}\right]^2 \\ & \Rightarrow\left[\mathrm{OH}^{-}\right]=10^{-5} \mathrm{M} \\ & \mathrm{pOH}=5 ; \mathrm{pH}=9\end{aligned}\)