A solution containing 2.44 g of a solute dissolved in 75 g of water boiled at 100.413°C . What will be the molar mass of the solute (Kb for water = 0.52 K kg mol-1) ?

Question

A solution containing 2.44 g of a solute dissolved in 75 g of water boiled at 100.413°C . What will be the molar mass of the solute (Kb for water = 0.52 K kg mol-1) ? (A)  40.96 g mol-1  (B)  20.48 g mol-1  (C)  81.92 g mol-1  (D) None of the above

Tardigrade Admin · Accepted Answer

W textsolute = 2.44 g W textsolvent = 75 g Tb = 100.413° C ∴ Δ Tb = 100.413 - 100° C = 0.413°C Thus, MA = (Kb × W textsolute × 1000/Δ Tb × W textsolvent) = (0.52 × 2.44 × 1000/75× 0.413) = 40 . 96 g mol-1

Q. A solution containing $2.44 g$ of a solute dissolved in $75 g$ of water boiled at $100.41 3^{\circ} C$ . What will be the molar mass of the solute
$(K_{b}$ for water $= 0.52 K k g m o l^{- 1})$ ?

$40.96 g m o l^{- 1}$

$20.48 g m o l^{- 1}$

$81.92 g m o l^{- 1}$

None of the above

Q. A solution containing 2.44g of a solute dissolved in 75g of water boiled at 100.413∘C . What will be the molar mass of the solute (Kb​ for water =0.52Kkgmol−1) ?

40.96gmol−1

20.48gmol−1

81.92gmol−1

None of the above

Wsolute​=2.44g Wsolvent​=75g Tb​=100.413∘C ∴ΔTb​=100.413−100∘C =0.413∘C Thus, MA​=ΔTb​×Wsolvent​Kb​×Wsolute​×1000​ =75×0.4130.52×2.44×1000​ =40.96gmol−1

Q. A solution containing $2.44 g$ of a solute dissolved in $75 g$ of water boiled at $100.41 3^{\circ} C$ . What will be the molar mass of the solute
$(K_{b}$ for water $= 0.52 K k g m o l^{- 1})$ ?

$40.96 g m o l^{- 1}$

$20.48 g m o l^{- 1}$

$81.92 g m o l^{- 1}$