Ca(OH)^2 does not completely dissociate. It only partially dissotiates in water to form OH- and Ca+2. An equilibrium mixture of Ca(OH) and its dissolved ions is found to have a pH= 10.3 what is Kc for this dissociation?

Question

Ca(OH)^2 does not completely dissociate.  It only partially dissotiates in water to form OH- and Ca+2. An equilibrium mixture of Ca(OH) and its dissolved ions is found to have a pH= 10.3 what is Kc for this dissociation?

DrBob222 · Answer

pH = 10.3. pH + pOH = pKw = 14; therefore, pOH = 3.7 and pOH = -log(OH^-). (OH^-) = 2E-4 ............Ca(OH)2 ==> Ca^2+ + 2OH^- ................x.........x........2x Kc = (Ca^2+)(OH^-)^2 (Ca^2+) = 1/2(2E-4) (OH^-) = 2E-4 Solve for Kc.