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WBJEE · Chemistry · Ionic Equilibrium

\(1 \times 10^{-3}\) mole of \(\mathrm{HCl}\) is added to a buffer solution made up of \(0.01 \mathrm{M}\) acetic acid and 0.01 M sodium acetate. The final pH of the buffer will be (given, \(\mathrm{p} K_{a}\) of acetic acid is 4.75 at \(\left.25^{\circ} \mathrm{C}\right)\)

  1. A 4.6
  2. B 4.66
  3. C 4.75
  4. D 4.8
Verified Solution

Answer & Solution

Correct Answer

(B) 4.66

Step-by-step Solution

Detailed explanation

\(\mathrm{CH}_{3} \mathrm{COO}^{-}+\mathrm{H}^{+} \longrightarrow \mathrm{CH}_{3} \mathrm{COOH}\) \[ \begin{aligned} \mathrm{pH}=& \mathrm{pK}_{a}+\log \frac{(\text { salt })}{(\text { acid })}=4.75+\log \frac{0.009}{0.011} \\ &=4.66 \end{aligned} \]