Question

$50mL$ of $0.02MNaOH$ solution is mixed $50mL$ of $0.06M$ acetic acid solution, the $pH$ of resulting solution is $(p{K}_a$ of acetic acid is $4.76,\log 5=0.70$ )

• A. 5.06
• B. 4.06
• C. 5.46
• D. 4.46

Answer 1

Answer: (D)

Given, Volume of $NaOH$ solution $=50mL$

Molarity of $NaOH$ solution $=0.02M$

Meq. of $NaOH=50\times 0.02=1meq$

Volume of $C{H}_{3}COOH$ solution $=50mL$

Molarity of $C{H}_{3}COOH=0.06M$

Meq. of $C{H}_{3}COOH=50\times 0.06=3meq$

$1$ meq. of $NaOH$ combines with $3$ meq. of

$C{H}_{3}COOH$ and forms $1$ meq. of $C{H}_{3}COONa$.

$\therefore 2$ meq. of $C{H}_{3}COOH$ is left.

So, it forms an acidic buffer.

Now, for an acidic buffer,

$pH=p{K}_a+\log \left[\frac{\text{ Salt }}{\text{ Acid }}\right]$

$pH=p{K}_a+\log \frac{\left[C{H}_{3}COONa\right]}{\left[C{H}_{3}COOH\right]}$

$\therefore pH=4.76+\log \left[\frac{l}{2}\right]$

$pH=4.76+\log \left(5\times 10^{-1}\right)$

$pH=4.76+\log 5-\log 10$

$=4.76+0.70-1$

$=4.46$