Answer:
Answer B.
That option must be the right one. It depends on the decimals, I got -2.01°C and that is so closed.
Step-by-step explanation:
We can calculate the freezing point of solution with the freezing point depression formula, of the colligative property as this:
Freezing T° of solution = - ( Kf . m . i - Freezing T° of pure solvent)
Kf for benzene: 5.07 °C/m
m = molality (mol/kg)
Mass of solvent (benzene) needs to be calculated with the density.
Benzene density = Benzene mass / Benzene volume
Benzene mass = Benzene density . Benzene volume
0.88 g/mL . 613.6 mL = 539.9 g
Let's convert the mass to kg → 539 .9 g . 1kg / 1000g = 0.5399 kg
m = 0.8 mol / 0.5399 kg → 1.48 m
As C₁₀H₂₂ is non electrolyte, i = 1
Freezing T° of pure solvent = 5.5°C
Let's replace:
Freezing T° of solution = - ( Kf . m . i - Freezing T° of pure solvent)
Freezing T° of solution = - (5.07°C/ m . 1.48 m . 1 - 5.5°C)
Freezing T° of solution = - 2.01 °C