A 35.0 mL aliquot of 0.120 M silver (I) nitrate solution is mixed with 27.0 mL of
0.0750 M potassium chromate solution. Using the solubility table provided, determine
if a precipitate will form and the concentrations of each ionic species at equilibrium.
I determined that a precipitate will form:
Q = [Ag+]^2[CrO42-] = (0.06774)^2(0.03266) = 1.50*10^-4 > Ksp = 1.2*10^-12
How do I calculate the concentrations of each ionic species? Ag+, CrO42-, K+, and NO3-