Problems · Problem 6.19
Q.The pH of 0.1M monobasic acid is 4.50. Calculate the concentration of species H+, A– and HA at equilibrium. Also, determine the value of Ka and pKa of the monobasic acid.
Yanam BieapTextbookSubjective· 2mImportance★★★★★est
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Start your 14-day free trial to unlock the full solution →The pH gives M directly; since only a tiny fraction of the acid dissociated, stays essentially at its initial 0.1 M. From these, and p.
The pH scale is a logarithmic measure of hydrogen ion concentration. The relationship is:
So if you know the pH, you can always find by taking the antilog. For a monobasic acid HA, the dissociation is simple:
Every molecule of HA that dissociates gives one and one . Therefore, in the solution, the concentration of equals the concentration of , provided there is no other significant source of .
Let's work through it step by step.
- Find from the given pH. The pH is 4.50. Using the definition:
To evaluate , note that . Since , we get:
- Relate to . From the dissociation equation, each comes from one HA molecule, producing one . So at equilibrium:
- Find at equilibrium. The acid started at 0.1 M, and only M of it dissociated -- about 0.03% -- so this loss is negligible against the initial concentration:
- Compute the ionization constant . Substituting the equilibrium concentrations into the equilibrium expression for : …
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