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Question 69 of 70

Q.The pH of sodium formate solution in terms of KaK_a and the concentration of the electrolyte is :

(a) pH=7−12pKa−12log⁡CpH = 7 - \dfrac{1}{2}pK_a - \dfrac{1}{2}\log C
(b) pH=7−12pKa+12log⁡CpH = 7 - \dfrac{1}{2}pK_a + \dfrac{1}{2}\log C
(c) pH=7+12pKa+12log⁡CpH = 7 + \dfrac{1}{2}pK_a + \dfrac{1}{2}\log C
(d) pH=7+12pKa−12log⁡CpH = 7 + \dfrac{1}{2}pK_a - \dfrac{1}{2}\log C
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Sodium formate is the salt of a weak acid and a strong base, so its solution is basic (hydrolysis of the formate anion); the standard salt-hydrolysis formula for exactly this weak-acid/strong-base case gives pHpH in terms of pKapK_a of the acid and the salt's concentration.

Sodium formate, HCOONaHCOONa, dissociates completely to give Na+Na^+ and HCOO−HCOO^- (formate ion, the conjugate base of the weak acid formic acid, HCOOHHCOOH). The formate ion undergoes hydrolysis in water: HCOO−+H2O⇌HCOOH+OH−HCOO^- + H_2O \rightleftharpoons HCOOH + OH^- making the solution basic (pH >7>7).

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