Q.23 The pH of a 1.0 L buffer solution containing 0.2 mol of acetic acid (CH3COOH) and 0.3
mol of sodium acetate (CH3COONa) is 5.0. The Ka of acetic acid is P × 10-5, where the numerical value of P (rounded off to one decimal place) is ____
Problem Statement
A buffer solution of acetic acid (CH₃COOH) and sodium acetate
(CH₃COONa) has a pH of 5.0.
The solution contains 0.2 mol CH₃COOH and
0.3 mol CH₃COONa in a total volume of 1.0 L.
Calculate the value of Ka for acetic acid in the form
P × 10−5.
Buffer pH Formula (Henderson–Hasselbalch Equation)
For an acetic acid buffer, the pH is given by:
pH = pKa + log10
(
[CH3COO−] / [CH3COOH]
)
Given Concentrations
- [CH3COOH] = 0.2 M
- [CH3COO−] = 0.3 M
Substitute Values
At pH = 5.0:
5.0 = pKa + log10(0.3 / 0.2)
Calculate the ratio:
0.3 / 0.2 = 1.5
Logarithmic value:
log10(1.5) ≈ 0.1761
Calculate pKa
pKa = 5.0 − 0.1761 = 4.8239
Calculate Ka
Using the definition:
Ka = 10−pKa
Ka = 10−4.8239 ≈ 1.5 × 10−5
Correct Answer
The value of Ka is:
Ka = 1.5 × 10−5
Hence, P = 1.5.
Why This Value?
The standard Ka of acetic acid is approximately
1.8 × 10−5.
However, since the given buffer has a higher salt-to-acid ratio
(1.5 : 1) and a pH of 5.0, the calculated Ka value adjusts slightly
to match the provided conditions.
Exam Tips
- Always convert moles to molarity when volume is given.
- Use the Henderson–Hasselbalch equation directly for buffers.
- Check that the salt-to-acid ratio is reasonable (> 1 for basic buffers).
- Round the final value as instructed in the question.
