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Exercise · Q33

Q.0.1 mol0.1\ \text{mol} of MgCl2\text{MgCl}_2 is dissolved in 1 kg1\ \text{kg} of water. Assuming complete dissociation into three ions, calculate the freezing-point depression of the solution. (KfK_f of water =1.86 K kg mol−1= 1.86\ \text{K kg mol}^{-1}.)

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Since MgCl2→Mg2++2Cl−\text{MgCl}_2 \to \text{Mg}^{2+} + 2\text{Cl}^- gives 3 ions per formula unit on complete dissociation, i=3i=3. With molality m=0.1 mol kg−1m=0.1\ \text{mol kg}^{-1}, ΔTf=iKfm=3×1.86×0.1=0.558 K\Delta T_f = i K_f m = 3 \times 1.86 \times 0.1 = 0.558\ \text{K}. [!ANSWER] The freezing-point depres …

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