Answer:
The freezing point depression of solvent is 0.8265 K.
Explanation:
Mass of glucose = 250 g
Mass of solvent = 20.0 g = 0.020 kg
Molal depression water constant of water,[tex]K_f[/tex] = 1.86 K kg/mol
Molality of the solution = [tex]\frac{20 g}{180 g/mol\times 0.250 kg}=0.4444 mol/kg[/tex]
Normal freezing point of water = [tex]T=273 K[/tex]
Freezing point of solution = [tex]T_f[/tex]
[tex]\Delta T_f=T-T_f[/tex]
[tex]\Delta T_f=K_f\times molality=1.86 K kg/mol \times 0.4444 mol/kg=0.8265 K[/tex]
The freezing point depression of solvent is 0.8265 K.
