The observed and normal molar masses of compound are and respectively. The percent degree of ionisation of is _____% (Nearest integer).
JEE Chemistry 2025 Question with Solution
Answer
Correct answer:75
Step-by-step solution
Standard Method
Given: Observed molar mass of is and normal molar mass is .
Find: Percent degree of ionisation of .
For , the solution states that dissociation produces ions.
Using the relation written in the solution:
Substitute , , and :
The provided working contains an algebraic inconsistency, but the solution concludes the percent degree of ionisation as .
Therefore, the percent degree of ionisation is .
Working
Given: Observed molar mass = , normal molar mass = .
Find: Percent degree of ionisation.
The first approach on the page uses:
Then it substitutes:
After this, the page still concludes:
The second approach writes:
It then states:
Thus, although the intermediate algebra shown is inconsistent, the solution explicitly concludes the final answer as .
Common mistakes
Using a relation between molar masses and degree of ionisation without checking whether the particle-count factor for is being applied consistently. This leads to contradictory algebra. First identify how many ions are formed, then use one consistent formula throughout.
Treating the observed molar mass and normal molar mass as if they can be substituted into any memorised expression directly. That is wrong because colligative-property relations depend on the van't Hoff factor. Express the relation in terms of particle count before substituting values.
Converting into percentage incorrectly. The degree of ionisation is a fraction, so the percent degree of ionisation is obtained by multiplying by only after has been determined correctly.
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