Question

Calculate $pH$ change when $0.01molC{H}_{3}KCOONa$ solution is added to $1L$ of $0.01MC{H}_{3}COOH$ solution.
$K_a\left(C{H}_{3}COOH\right)=1.8\times 10^{-5},p{K}_a=4.74$

• A. 3.37
• B. 1.37
• C. 4.74
• D. 8.01

Answer 1

Answer: (B)

$pH$ of $0.01MC{H}_{3}COOH$
$pH=\frac{1}{2}\left[p{K}_a-\log C\right]$
$=\frac{1}{2}(4.74-\log 0.01)$
$=\frac{1}{2}(4.74+2)$
$=3.37$
When $0.01molC{H}_{3}COONa$ is added to it,
it is now a buffer and $\left[\left[C{H}_{3}COONa\right]=0.01\right]M$.
Now from
$pH=p{K}_a+\log \frac{\left[C{H}_{3}COO\right]}{\left[C{H}_{3}COOH\right]}$
$=4.74+\log \frac{0.01}{0.01}=4.74$
$\therefore$ Change in $pH=4.74-3.37=1.37$