Answer:
0.297 °C
Step-by-step explanation:
The formula for the freezing point depression ΔT_f is
ΔT_f = iK_f·b
i is the van’t Hoff factor: the number of moles of particles you get from a solute.
For glucose,
glucose(s) ⟶ glucose(aq)
1 mole glucose ⟶ 1 mol particles i = 1
Data:
Mass of glucose = 10.20 g
Mass of water = 355 g
ΔT_f = 1.86 °C·kg·mol⁻¹
Calculations:
(a) Moles of glucose
n = 10.20 g × (1 mol/180.16 g)
= 0.056 62 mol
(b) Kilograms of water
m = 355 g × (1 kg/1000 g)
= 0.355 kg
(c) Molal concentration
b = moles of solute/kilograms of solvent
= 0.056 62 mol/0.355 kg
= 0.1595 mol·kg⁻¹
(d) Freezing point depression
ΔT_f = 1 × 1.86 × 0.1595
= 0.297 °C
