Skip to content
Question of 155

Q.Use the Henderson-Hasselbalch equation to determine the pH of a buffer solution containing 0.05 M NH4OH and 0.1 M NH4Cl. (pKb of NH4OH = 4.75)

Assam AhsecAHSEC Higher Secondary (HS) 1st Year Examination 2026Subjective· 2mImportance★★★★★
0% · 0/155 Questions
🔒 Locked · start free trial →

You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.

Start your 14-day free trial to unlock the full solution →

pOH = 4.75 + log(0.1/0.05) = 5.05, so pH = 14 - 5.05 = 8.95.

This is a basic buffer (weak base NH4OH + its salt NH4Cl). The Henderson-Hasselbalch equation for a basic buffer:

pOH = pKb + log([salt]/[base]).

Given: pKb = 4.75, [salt] = [NH4Cl] = 0.1 M, [base] = [NH4OH] = 0.05 M.

Step 1 - compute pOH:

pOH = 4.75 + log(0.1 / 0.05)

= 4.75 + log(2)

= 4.75 + 0.301

= 5.05.

…

Unlock everything free for 14 days

  • Full step-by-step solutions
  • Concept-first explanations
  • Methods, shortcuts & mistakes
  • PYQ mapping + timed mock tests

Full access for 14 days. No credit card required.