Answer:
The van't Hoff factor of the solute is 1.51
Explanation:
Step 1: Data given
Molality = 0.710 molal
The aqueous solution freezes at − 2.00°C
Freezing point depression constant of water = 1.86 °C/m
Step 2: Calculate the van't Hoff factor
ΔT = i*Kf * m
⇒ with ΔT = The difference between the feezing point of pure and solution = 2.00°C
⇒ i the van't Hoff factor = TO BE DETERMINED
⇒ Kf = Freezing point depression constant of water = 1.86 °C/m
⇒ m = the molality of the solution = 0.710 molal
2.00 = i * 1.86 * 0.710
i = 1.51
The van't Hoff factor of the solute is 1.51
