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Q.Which one of the following will cause common-ion-effect when added to the following dissociation equilibrium reaction ? CH3COOH(aq)⇌CH3COO(aq)−+H(aq)+CH_3COOH_{(aq)} \rightleftharpoons CH_3COO^-_{(aq)} + H^+_{(aq)}

(a) CH3COClCH_3COCl
(b) AgClAgCl
(c) CH3ClCH_3Cl
(d) HClHCl
Puducherry TnboardTamil Nadu HSC (DGE) Board 2023MCQ· 1mImportance★★★★★
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Adding HClHCl directly increases [H+][H^+], an ion common to the acetic-acid ionisation equilibrium, which by Le Chatelier's principle suppresses further dissociation of CH3COOHCH_3COOH — the common-ion effect.

The equilibrium given is CH3COOH(aq)⇌CH3COO(aq)−+H(aq)+CH_3COOH_{(aq)} \rightleftharpoons CH_3COO^-_{(aq)} + H^+_{(aq)}. A common-ion effect occurs only when the added species directly supplies an ion that already appears in this equilibrium, i.e. CH3COO−CH_3COO^- or H+H^+. HClHCl is a strong acid that fully ionises to give H+H^+ and Cl−Cl^-; the extra H+H^+ it contributes is common to the acetic-acid equilibrium, so by Le Chatelier's principle the equilibrium shifts left, suppressing ionisation of CH3COOHCH_3COOH — a genuine common-ion effect. AgClAgCl supplies Ag+Ag^+ and Cl−Cl^-, neither of which appears in this equilibrium. CH3ClCH_3Cl (chloromethane) and CH3COClCH_3COCl (acetyl chlori …

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