What is the pH of a 0.16 M solution of Benzoic acid, pKa= 4.202
Initial concentration of benzoic acid = [C6H5COOH]initial = 0.16 M
pKa benzoic acid = 4.202
Ka = 10-pKa
Ka = 10-4.202
Ka = 6.28 x 10-5
| ICE table | C6H5COOH (aq) | ![]() |
C6H5COO- (aq) | H+ (aq) |
| Initial conc. | 0.16 M | 0 | 0 | |
| Change | -x | +x | +x | |
| Equilibrium conc. | 0.16 M - x | +x | +x |
Ka = [C6H5COO-]eq[H+]eq / [C6H5COOH]eq
6.28 x 10-5 = [(x) * (x)] / (0.16 M - x)
Solving for x, x = 3.14 x 10-3 M
[H+] = x = 3.14 x 10-3 M
pH = -log[H+]
pH = -log(3.14 x 10-3 M)
pH = 2.50
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solution (K+ -OOCC6H5). The pka of
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