Question

Determine the freezing point of a solution containing $0.625g$ of glucose $\left(C_6{H}_{12}{O}_6\right)$ dissolved in $102.8g$ of water.
(Freezing point of water $=273K$, $K_f$ for water $=1.87K$ $kg$ ${mol}^{-1}$, atomic weight $C=12$, $H=1$, $O=16$)

Answer 1

The molecular weight of glucose $C_6{H}_{12}{O}_6=6\left(12\right)+12\left(1\right)+6\left(16\right)=180$ g/mol.
The number of moles of glucose $=\frac{0.625g}{180g/mol}=0.00347moles$
Mass of water $=102.8g=0.1028kg$
The molality of glucose $m=\frac{0.00347moles}{0.1028kg}=0.0338mol/kg$
The depression in the freezing point $\Delta T_f=K_{f}m=1.87Kkg/mol\times 0.0338mol/kg=0.0632K$
Freezing point of water =$273K$
The freezing point of the solution $=273+0.0632=273.0632K$