Answer:
5.2
Explanation:
Will work problem two ways (1) applying common ion analysis and (2) using the Henderson-Hasselbalch equation.
Given 75g NaOAc into 500ml of 0.67M HOAc
=> (75g/82.034g/mol) / 0.500L = 1.829M NaOAc solution
Common-ion Analysis
HOAc ⇄ H⁺ + OAc⁻
C(i) 0.67M 0 1.829M
ΔC -x +x +x
C(f) 0.67-x 1.829+x
≅ 0.67M x ≅ 1.829M
Ka = [H⁺][OAc⁻]/[HOAc] => [H⁺] = Ka[HOAc]/[OAc⁻]
=> (1.7x10⁻⁵)(0.67)/(1.829) = 6.2 x 10⁻⁶M in H⁺
pH = -log[H⁺] = - log(6.2x10⁻⁶) = 5.2
Henderson-Hasselbalch equation
pKa(HOAc) = -logKa = -log(1.7x10⁻⁵) = 4.76
pH = pKa + log[Base]/[Acid] = 1.76 + log(1.829M)/(0.67M) = 5.2
