Question

The solubility of AgBr in water is 1.20 × 10^–5 mol dm^–3. Calculate the solubility product of AgBr.

Answer 1

Given: Solubility of AgBr = 1.20 × 10⁻⁵

To find: Solubility product of AgBr

Formula: K_sp = x^x y^y S^x+y

Calculation: The solubility equilibrium of AgBr is:

\[\ce{AgBr_{(s)} <=> Ag^+_{ (aq)} + Br^-_{ (aq)}}\]

x = 1, y = 1

K_sp = x^x y^y S^x+y = (1)¹ (1)¹ S¹⁺¹ = S²

K_sp = (1.20 × 10^-5)²

= 1.44 × 10^-10

Solubility product of AgBr is 1.44 × 10^-10