Question 13.10: Establishing a Molecular Formula with Freezing-Point Data Ni...

(a) Note that T_f = -0.450 °C, and that \Delta T_f = -0.450  –  0.000 °C = -0.450 °C.

molality = = \frac{\Delta T_f}{-K_f} = \frac{-0.450  ^{\circ} C }{-1.86  ^{\circ} C  m ^{-1}} = 0.242 m

(b) Let’s represent the molar mass as x g/mol. The amount, in moles, contained in a 1.921 g sample is 1.921 g × (1 mol/ x g) = (1.921/ x) mol. Thus,

\text { molality } = \frac{1.921  x^{-1}}{0.04892  kg \text { water}} = 0.242  mol  ( kg \text { water})^{-1}

x = 162

The molar mass is 162 g/mol.

(c) This calculation is left as an exercise for you to do. The result you should obtain is C_5H_7N. The formula mass based on this empirical formula is 81 u. The molecular mass obtained from the molar mass in part (b) is exactly twice this value−162 u. The molecular formula is twice C_5H_7N or C_{10}H_{14}N_2.

Assess
Using the freezing-point data is another experimental technique that can be used to obtain the chemical properties of a substance. In this example we were able to determine the molecular formula from the freezing-point depression and a known amount of substance dissolved in a solvent. Note that water was used as the solvent here; however, other solvents can be used in freezing-point experiments.