A 0.20 mol/L solution of propionic acid has a pH of 2.79. What is the $p K_{a}$ $"p"K_text(a)$ of propionic acid?

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A 0.20 mol/L solution of propionic acid has a pH of 2.79. What is the $p K_{a}$ $"p"K_text(a)$ of propionic acid?

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Answer 1 · 2014-07-25T18:21:27

The $p K_{a}$ $"p"K_"a"$ of propanoic acid is 4.88.

First, calculate the equilibrium concentration of H₃O⁺.

pH = 2.79

[H₃O⁺] = $10^{-pH}$ $10^"-pH"$ mol/L= $10^{- 2.79}$ $10^-2.79$ mol/L = 1.62 × 10⁻³ mol/L

Second, write the balanced chemical equation and set up an ICE table.

HA +H₂O ⇌ A⁻ + H₃O⁺
I/mol·L⁻¹: 0.20; 0; 0
C/mol·L⁻¹: $- x$ $-x$ ; $+ x$ $+x$ ; $+ x$ $+x$
E/mol·L⁻¹: 0.20 - $x$ $x$ ; $x$ $x$ ; $x$ $x$

We know that at equilibrium, [H₃O⁺] = [A⁻] = $x$ $x$ = 1.62 × 10⁻³ mol/L

and [HA] = (0.20 - $x$ $x$ ) mol/L = (0.20 - 1.62 × 10⁻³) mol/L = 0.198 mol/L

Third, calculate $K a$ $K"a"$ .

$K a = \frac{[H ₃ O ⁺] [A ⁻]}{[H A]} = \frac{1.62 \times 10 ⁻ ³ \times 1.62 \times 10 ⁻ ³}{0.198}$ $K"a" = ([H₃O⁺][A⁻])/([HA]) =(1.62 × 10⁻³ × 1.62 × 10⁻³) /0.198$ = 1.32 × 10⁻⁵

Fourth, calculate $p K_{a}$ $"p"K_"a"$

$p K_{a} = - {log K}_{a}$ $"p"K_"a" = -logK_"a"$ = log(1.32 × 10⁻⁵) = 4.88

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A 0.20 mol/L solution of propionic acid has a pH of 2.79. What is the $p K_{a}$ $"p"K_text(a)$ of propionic acid?

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A 0.20 mol/L solution of propionic acid has a pH of 2.79. What is the pKa"p"K_text(a) of propionic acid?

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A 0.20 mol/L solution of propionic acid has a pH of 2.79. What is the $p K_{a}$ $"p"K_text(a)$ of propionic acid?