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Question

A certain substance 'A' tetramerises in water to the extent of 80%. A solution of 2.5 g of A in 100 g of water lowers the freezing point by 0.3C. The molar mass of A in (g/mol) is:
(Molal depression constant of A is 1.86 K kg mol1)

A
122
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B
31
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C
244
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D
62
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Solution

The correct option is D 62
For a electrolyte undergoing association,
β=(i1)n(1n)
where,
β=degree of association
i=is van't Hoff factor
n= No. of ions of the electrolyte
n = 4 since, the substance is tetramerises.
Thus,
0.8=(i1)4(14)
2.4=4i4
4i=1.6
i=0.4

For depression of freezing point of the solution,
Tf=i×Kf×m
where,
Tf is the depression in freezing point.
Kf is molal depression constant.
m is molality of solution.
Therefore,
0.3=0.4×1.86×wB×1000mB×wA
where,
wB is mass of solute
mB is molar mass of solute
wA is mass of solvent
0.3=0.4×1.86×2.5×1000mB×100mB=62
The molar mass of A is 62 g mol1

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