Q.The pKa of acetic acid and pKb of ammonium hydroxide are 4.76 and 4.75 respectively. Calculate the pH of ammonium acetate solution.
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Start your 14-day free trial to unlock the full solution →Ammonium acetate is a salt of a weak acid and a weak base, so its pH is given by the formula . Substituting the given values, the pH is 7.005.
Why This Approach Works
Ammonium acetate () is a special case: it's a salt formed from a weak acid (acetic acid, ) and a weak base (ammonium hydroxide, ). When dissolved in water, both the cation () and the anion () hydrolyze — that is, they react with water.
The key insight: the pH of such a solution depends on the relative strengths of the parent acid and base. If the acid is stronger ( smaller), the solution is slightly acidic. If the base is stronger ( smaller), it's slightly basic. If they are nearly equal, the solution is nearly neutral.
Here, and — they are almost identical. So we expect a pH very close to 7. Let's calculate exactly.
Step-by-Step Derivation
1. Write the hydrolysis reactions.
The ammonium ion hydrolyses as a weak acid:
The acetate ion hydrolyses as a weak base:
2. Set up the equilibrium expressions.
For the ammonium ion:
But note: is related to by . Since we are given of ammonium hydroxide (), which is the same as of , we have:
For the acetate ion:
And is related to the given of acetic acid:
3. Derive the pH formula for a salt of weak acid + weak base.
Let the initial concentration of the salt be mol/L. At equilibrium, let be the concentration of from the first hydrolysis, and be the concentration of from the second hydrolysis. But here's the clever part: the two hydrolyses are coupled — the and produced will partially neutralize each other.
A cleaner approach: use the exact expression derived from simultaneous equilibria. For a salt where is the conjugate acid of a weak base () and is the conjugate base of a weak acid (), the is given by:
›Proof
Derivation of the formula
The equilibria are:
- with
- with
- Water:
From charge balance:
From mass balance: and
…
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