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Q.On dissolution of 2.0 g of a non-electrolyte in 50.0 g benzene, its freezing point decreases by 0.40 K. The freezing point depression constant of benzene is 5.12 K kg mol−15.12\ K\ kg\ mol^{-1}. Calculate the molar mass of the solute.

Uttar Pradesh UpmspUP Board (UPMSP) Intermediate 2023Subjective· 2mImportance★★★★★
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Using ΔTf=Kf⋅w2⋅1000M2⋅w1\Delta T_f = \dfrac{K_f \cdot w_2 \cdot 1000}{M_2 \cdot w_1} and solving for M2M_2 gives 512 g mol⁻¹.

Concept: Freezing-point depression is a colligative property: ΔTf=Kf m\Delta T_f = K_f\, m, where mm is molality.

Rearranged for molar mass:

M2=Kf⋅w2⋅1000ΔTf⋅w1M_2 = \frac{K_f \cdot w_2 \cdot 1000}{\Delta T_f \cdot w_1}

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