Question

When $0.004MN{a}_{2}S{O}_4$ is isotonic with 0.01M solution of glucose at same temperature.the apparent degree of dissociation of sodium sulphate is

• A. 75%
• B. 50%
• C. 25%
• D. 85%

Answer 1

The correct option is A

75%

For $N{a}_{2}S{O}_4,{\pi }_1=iMRT$
$=i\times 0.004\times RT$
For glucose, ${\pi }_2=CRT$
= 0.01 RT
${\pi }_1={\pi }_2$ (isotonic)
or 0.004i = 0.01
i = 2.5
$\begin{array}{ccc}N{a}_{2}S{O}_4\rightleftharpoons & 1N{a}^{\oplus }+& S{O}_4^{2-}\\ 1& 0& 0\\ 1-\alpha & 2\alpha & \alpha \end{array}$
Total particles=$1-\alpha +2\alpha +\alpha$
$=1+2\alpha \therefore i=\frac{1+2\alpha }{1}=2.5$
$\alpha =0.75$ or 75% dissociated