$A$ buffer solution is prepared by mixing $0.01 \ M$ weak acid and $0.05 \ M$ solution of a salt of weak acid and strong base. What is the $pH$ of the buffer solution? $(pK_a = 4.74)$

  • A
    $3.34$
  • B
    $4.80$
  • C
    $5.44$
  • D
    $6.93$

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Similar Questions

One litre buffer solution was prepared by adding $0.10 \ mol$ each of $NH_3$ and $NH_4Cl$ in deionised water. The change in $pH$ on addition of $0.05 \ mol$ of $HCl$ to the above solution is $............ \times 10^{-2}$ ($Nearest$ $integer$) ($Given$: $pK_b$ of $NH_3 = 4.745$ and $\log_{10} 3 = 0.477$)

Study the following table:
Buffer SolutionVolume (in $mL$) of $0.1 \ M$ Weak acidVolume (in $mL$) of $0.1 \ M$ sodium salt of weak acid
$I$$4.0$$4.0$
$II$$4.0$$40.0$
$III$$40.0$$4.0$
$IV$$0.1$$10.0$

Which of the two sets of buffer solutions have the least $pH$?

The $pK_b$ of $CN^{\Theta}$ is $4.7$. The $pH$ of a solution prepared by mixing $2.5 \ mol$ of $KCN$ and $2.5 \ mol$ of $HCN$ in water and making the total volume up to $500 \ mL$ is:

Which one of the following pairs of solutions is not an acidic buffer?

The $pH$ of an aqueous solution containing $1 \ M$ benzoic acid $(pK_{a}=4.20)$ and $1 \ M$ sodium benzoate is $4.5$. The volume of benzoic acid solution in $300 \ mL$ of this buffer solution is . . . . . . $mL$.

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