aBEq66

Acid-Base Equilibria

66) [BrO^-] = 1.15 M K_b = 4.0 x 10^-6

BrO^-(aq) + H₂O(l) HBrO(aq) + OH^-(aq)

[ ]_i 1.15 0 0

[ ]_c-x +x +x

[ ]_e 1.15-x x x

K_b= [HBrO] x [OH^-]/[BrO^-]

4.0 x 10^-6 = x · x/(1.15-x) ≈ x²/1.15

[OH^-] = 2.1 x 10^-3 M

%ion = [HBrO]/[BrO^-] x 100%

%ion = 2.1 x 10^-3 M/1.15 M x 100% = 0.18%

%ion < ≈ 5%, therefore the assumption 1.15-x ≈ 1.15 is valid.

pOH = -log[OH^-] = -log(2.1 x 10^-3) = 2.68

pH + pOH = 14.00

pH = 14.00 - pH = 14.00 - 2.68 = 11.32

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