Answer:
3.74g of ethylene glycol must be added to decrease the freezing point by 0.400°C
Step-by-step explanation:
One colligative property is the freezing point depression due the addition of a solute. The equation is:
ΔT=Kf*m*i
Where ΔT is change in temperature = 0.400°C
Kf is freezing point constant of the solvent = 1.86°C/m
m is molality of the solution (Moles of solute / kg of solvent)
And i is Van't Hoff constant (1 for a nonelectrolyte)
Replacing:
0.400°C =1.86°C/m*m*1
0.400°C / 1.86°C/m*1 = 0.215m
As mass of solvent is 280.0g = 0.2800kg, the moles of the solute are:
0.2800kg * (0.215moles / 1kg) = 0.0602 moles of solute must be added.
The mass of ethylene glycol must be added is:
0.0602 moles * (62.10g / mol) =
3.74g of ethylene glycol must be added to decrease the freezing point by 0.400°C