Answer: [tex]K_{sp}=[Cu^+]^2[CO_3^{2-}][/tex]
Explanation:
Solubility product is defined as the equilibrium constant in which a solid ionic compound is dissolved to produce its ions in solution. It is represented as [tex]K_{sp}[/tex]
The equation for the ionization of the given compound is given as:
[tex]Cu_2CO_3\leftrightharpoons 2Cu^{+}+CO_3^{2-}[/tex]
By stoichiometry of the reaction:
1 mole of [tex]Cu_2CO_3[/tex] gives 2 moles of [tex]Cu^{+}[/tex] and 1 mole of [tex]CO_3^{2-}[/tex].
When the solubility of [tex]Cu_2CO_3[/tex] is S moles/liter, then the solubility of [tex]Cu^{+}[/tex] will be 2S moles\liter and solubility of [tex]CO_3^{2-}[/tex] will be S moles/liter.
Expression for the equilibrium constant of [tex]Ag_2CrO_4[/tex] will be:
[tex]K_{sp}=[Cu^+]^2[CO_3^{2-}][/tex]
