The difference between the boiling point and freezing point of an aqueous solution containing sucrose (molecular mass `= 342 g mol^(-1))` in 100 g of water is `105.04`. If `K_(f)` and `K_(b)` of water are 1.86 and `0.51 Kg mol^(-1)` respectively, the weight of sucrose in the solution is aboutA. 34.2gB. 342gC. 7.2gD. 72g

The difference between the boiling point and freezing point of an aque

1.	The difference between the boiling point and freezing point of an aqueous solution containing sucrose (molecular mass `= 342 g mol^(-1))` in 100 g of water is `105.04`. If `K_(f)` and `K_(b)` of water are 1.86 and `0.51 Kg mol^(-1)` respectively, the weight of sucrose in the solution is aboutA. 34.2gB. 342gC. 7.2gD. 72g
Answer» Correct Answer - D `DeltaT_(b) = K_(b) xx m` and `DeltaT_(f) = K_(f) xx m` `:. DeltaT_(b) +DeltaT_(f) = (K_(b) +K_(f))m` Now, `T_(b) - T_(f) = (T_(b)^(@) +DeltaT_(b)) - (T_(f)^(@)-DeltaT_(f))` `105 = (DeltaT_(b) +DeltaT_(f)) + (T_(b)^(@) - T_(f)^(@))` `105 = (DeltaT_(b) +DeltaT_(f)) +100` `:. DeltaT_(b) + DeltaT_(f) = 5` `:. m = (DeltaT_(b) + DeltaT_(f))/(K_(b) +K_(f)) = (5)/(1.86 +0.51) = (5)/(2.37) = 2.11` Molalioty `= ("Moles of solute")/("Mass of solvent"(kg))` `:.` Moles of solute `= 2.11 xx 0.1 = 0.211` ? `:.` Mass of solute `= 0.211 xx 342 = 72.16g`

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