Calculate the pH of 0.0070 M butanoic acid, which is a monoprotic acid; Ka=1.52 x 10−5. Assume that the 5% approximation rule applies. Provide your answer to two places after the decimal?

1 Answer
Apr 9, 2018

pH=3.50

Explanation:

Butanoic acid (HC4H7O2) is a weak acid .

DISSOCIATION

HC4H7O2.H++C4H7O2

The equilibrium constant for this expression is called the acid dissociation constant, Ka.

Ka = 1.52 x105

The expression for Ka is:

Ka = [C4H7O2][H+][HC4H7O2]

AT EQUILIBRIUM
Write each equilibrium concentration in terms of x

x = [C4H7O2]= [H+]

C = [HC4H7O2]

So,

Ka = [x][x][Cx]= x2Cx

With the small x approximation, CxC so that:

xCKa=3.187×104 mol/L

Calculating,

pH=log[H+]

pH=log[3.187 x104]

pH=3.50

NOTES

Checking the 5% Rule (not used in here)

(3.187 E-40.007)100=4.6%<5%

5% Rule should be considered

x-solution negative value was not considered