Example 1: Dissolution of silver chloride (AgCl)
The dissociation of AgCl in water is represented by:
AgCl (s)↔Ag+(aq)+Cl−(aq)
At equilibrium, the solubility product is:
Ksp=[Ag+]⋅[Cl−]
If the concentrations of Ag+ and Cl− are 1.0×10−5 M each:
IP=[Ag+]⋅[Cl−]=(1.0×10−5)⋅(1.0×10−5)=1.0×10−10
Compare this to the Ksp of AgCl, which is 1.8×10−10 at 25°C:
IP<Ksp: The solution is unsaturated, so more AgCl can dissolve.
Example 2: Precipitation of barium sulfate (BaSO4)
The dissociation of BaSO4 is:
BaSO4(s)↔Ba2+(aq)+SO42−(aq)
Suppose [Ba2+]=1.0×10−4 M and [SO42−]=2.0×10−5 M. Calculate the ionic product:
IP=[Ba2+]⋅[SO42−]=(1.0×10−4)⋅(2.0×10−5)=2.0×10−9
The Ksp of BaSO4 is 1.1×10−10:
IP>Ksp: The solution is supersaturated, so BaSO4 will precipitate.