A precipitate of PbI₂ is formed when 5 mL of 0.012 M Pb(NO₃)₂ is added to 5 mL of 0.030 M KI.

It was found experimentally that the final concentration of I^- in the 10 mL solution after equilibrium was 8 x 10^-3 M

a) How many moles of Pb²⁺ are originally in the solution?

b) How many moles of I^- are originally present?

c) How many moles of I^- remained in solution after equilibrium?

d) How many moles of I^- precipitated?

e) How many moles of PbI₂ precipitated?

f) How many moles of PbI₂ remain in solution at equilibrium?

g) What is [Pb²⁺] at equilibrium?

h) What is K_sp for the formation of PbI₂ ?