Ask Me Help Desk - In units of grams per 100 mL of solution, what is the solubility of AgCN? And Zn(CN)2

First, write down the Ksp expression.

I'll do that of AgCN and you'll try that for Zn(CN)2.

$AgCN \rightleftharpoons Ag^+ + CN^-$

$K_{sp} = [Ag^+][CN^-]$

That is:

$2.2 \times 10^{-16} = [Ag^+][CN^-]$

Look at the equation now. Let's take one mole/dm^3 of initial AgCN (I always use one mole for the ease of calculations, and this was, we also have the AgCN largely in excess)

Initial AgCN: 1 M, Ag+ : 0 M, CN- : 0 M
At equilibrium, AgCN: 1-x M, Ag+ : x M, CN- : x M

If you had x moles from the initial AgCN dissociating, then you have 1-x moles of AgCN left, and you get x moles of each Ag+ and CN-.

Plug that in the equation.

$2.2 \times 10^{-16} = [Ag^+][CN^-]$

$2.2 \times 10^{-16} = [x][x]$

$2.2 \times 10^{-16} = x^2$

$x = \sqrt{2.2 \times 10^{-16}} = 1.48 \times 10^{-8}$

This means that 1.48x10^-8 M dissociated completely.

Now, you have the concentration that dissolves (dissociates), convert it into grams per Litre.

1.48 x 10^-8 = (107.9+12+14) * 1.48 x 10^-8 = 1.99 x 10^-6 g/L

For 1000 mL, it is 1.99 x 10^-6 g
For 100 mL, it will be 1.99 x 10^-7 g

Hence, solubility = 1.99 x 10^-7 g/ 100 mL