Dissolution of 1.5 g of non-volatile solute (Molecular weight = 60) in 250 g of a solvent reduces its freezing point by 0.01oC . Find the molal depression constant of the solvent.

Question

Dissolution of 1.5 g of non-volatile solute (Molecular weight = 60) in 250 g of a solvent reduces its freezing point by 0.01oC . Find the molal depression constant of the solvent. (A) 0.01 (B) 0.001 (C) 0.0001 (D) 0.1

Tardigrade Admin · Accepted Answer

Depression in freezing point, ÎTf=kf× m Where, m=Molality=(Weight of solute × 1000/Molecualr weight of solute × Weight of solvent) =(1.5 × 1000/60 × 250) ÎTf =0.1oC molal- 1 ⇒ ÎTf=kf× 0.1 0.01=kf× 0.1 ∴ kf=(0.01/0.1) =0.1

Q. Dissolution of 1.5g of non-volatile solute (Molecular weight = 60) in 250g of a solvent reduces its freezing point by 0.01oC . Find the molal depression constant of the solvent.

0.01

0.001

0.0001

0.1

Depression in freezing point, ΔTf​=kf​×m Where, m=Molality=Molecualrweightofsolute×WeightofsolventWeightofsolute×1000​ =60×2501.5×1000​ ΔTf​ =0.1oCmolal−1 ⇒ΔTf​=kf​×0.1 0.01=kf​×0.1 ∴kf​=0.10.01​ =0.1

Q. Dissolution of $1.5 g$ of non-volatile solute (Molecular weight = 60) in $250 g$ of a solvent reduces its freezing point by $0.0 1^{o} C$ . Find the molal depression constant of the solvent.