Answer : The maximum amount of nickel(II) cyanide is [tex]5.84\times 10^{-12}M[/tex]
Explanation :
The solubility equilibrium reaction will be:
[tex]Ni(CN)_2\rightleftharpoons Ni^{2+}+2CN^-[/tex]
Initial conc. 0.220 0
At eqm. (0.220+s) 2s
The expression for solubility constant for this reaction will be,
[tex]K_{sp}=[Ni^{2+}][CN^-]^2[/tex]
Now put all the given values in this expression, we get:
[tex]3.0\times 10^{-23}=(0.220+s)\times (2s)^2[/tex]
[tex]s=5.84\times 10^{-12}M[/tex]
Therefore, the maximum amount of nickel(II) cyanide is [tex]5.84\times 10^{-12}M[/tex]
