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Q.1.00 g of a non-electrolyte solute dissolved in 50g of benzene lowered the freezing point of benzene by 0.40 K. The freezing point depression constant of benzene is 5.12 K kg mol−15.12\,\text{K kg mol}^{-1}. Find the molar mass of the solute.

Karnataka PUCKarnataka II PUC Board 2026Subjective· 3mImportance★★★★★
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Applying the freezing-point-depression formula gives a molar mass of 256 g mol⁻¹.

Depression in freezing point: ΔTf=Kf×m=Kf×w2×1000M2×w1\Delta T_f = K_f \times m = K_f \times \dfrac{w_2 \times 1000}{M_2 \times w_1}, where w1w_1 is the mass of solvent in grams.

Rearranging for the molar mass of the solute:

M2=Kf×w2×1000ΔTf×w1M_2 = \dfrac{K_f \times w_2 \times 1000}{\Delta T_f \times w_1} …

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