Question

A 4% solution(w/w) of sucrose (M = 342 g mol^–1) in water has a freezing point of 271.15 K. Calculate the freezing point of 5% glucose (M = 180 g mol^–1) in water.
(Given: Freezing point of pure water = 273.15 K) 

Answer 1

Molality (m) = `"n"/"W"_("solvent"("kg"))`

For sucrose solution: 

m =`(4/342)/(96/1000)= 4/342xx1000/96 = 0.122"m"`

(Δ T_f)₁ = (273.15 − 271.15)K = 2K

(Δ T_f)₁ = K_fm = K_f × 0.122

2= K_f × 0.122    .......(1)

For glucose solution : 

m=`(5/180)/(95/1000)=5/180xx1000/95= 0.292"m"`

(Δ T_f)₂ =K_f × 0.292  .......(2)

Dividing eqn. (2) by (1) 

`(Delta "T"_"f")_2/2 = ("K"_"f"xx0.292)/("K"_"f"xx0.122`

`(Delta"T"_"f")_2 = 0.292/0.122xx2 = 4.79`

T_f = 273.15 − 4.79 = 268.36 K

Freezing point of glucose solution will be 268.36 K