When 25 g of a non-volatile solute is dissolved in 100 g of water, the vapour pressure is lowered by 2.25 × 10-1 mm. If the vapour pressure of water at 20° C is 17.5 mm, what is the molecular weight of the solute?

Question

When 25 g of a non-volatile solute is dissolved in 100 g of water, the vapour pressure is lowered by 2.25 × 10-1 mm. If the vapour pressure of water at 20° C is 17.5 mm, what is the molecular weight of the solute? (A) 206 (B) 302 (C) 350 (D) 276

Tardigrade Admin · Accepted Answer

Given, Weight of non-volatile solute, w=25 g Weight of solvent, W=100 g Lowering of vapour pressure, p°-ps=0.225 mm Vapour pressure of pure solvent, p°=17.5 mm Molecular weight of solvent (H2 O), M=18 g Molecular weight of solute, m=? According to Raoult's law p°-ps p°=(w × M/m × W) (0.225/17.5)=(25 × 18/m × 100) m=(25 × 18 × 17.5/22.5) =350 g

Q. When 25g of a non-volatile solute is dissolved in 100g of water, the vapour pressure is lowered by 2.25×10−1mm. If the vapour pressure of water at 20∘C is 17.5mm, what is the molecular weight of the solute?

206

302

350

276

Q. When $25 g$ of a non-volatile solute is dissolved in $100 g$ of water, the vapour pressure is lowered by $2.25 \times 1 0^{- 1} mm$ . If the vapour pressure of water at $2 0^{\circ} C$ is $17.5 mm$ , what is the molecular weight of the solute?