Skip to content

Chemistry · Ch 8 — Ionic Equilibrium

Common Ion Effect

8.6

Common Ion Effect

When a salt of a weak acid is added to that same weak acid, the acid's dissociation is suppressed further -- called the common ion effect. Adding sodium acetate to acetic acid is the classic case: acetic acid is only weakly dissociated, CH3COOH(aq)⇌H+(aq)+CH3COO−(aq)CH_3COOH(aq) \rightleftharpoons H^+(aq)+CH_3COO^-(aq), while the added salt sodium acetate dissociates completely, CH3COONa(aq)→Na+(aq)+CH3COO−(aq)CH_3COONa(aq) \rightarrow Na^+(aq)+CH_3COO^-(aq), sharply raising the overall CH3COO−CH_3COO^- concentration. By Le Chatelier's principle, a system at equilibrium responds to a stress by shifting to relieve it -- so the excess CH3COO−CH_3COO^- combines with H+H^+ to form more unionised CH3COOHCH_3COOH, shifting the acetic acid equilibrium to the left, i.e. suppressing its dissociation. In general, the dissociation of a weak acid is suppressed in the presence of a salt contain …