Respuesta :
Answer: The freezing point of solution is -5.11°C
Explanation:
Vant hoff factor for ionic solute is the number of ions that are present in a solution. The equation for the ionization of sodium chloride follows:
[tex]NaCl(aq.)\rightarrow Na^{+}(aq.)+Cl^-(aq.)[/tex]
The total number of ions present in the solution are 2.
To calculate the molality of solution, we use the equation:
[tex]Molality=\frac{m_{solute}\times 1000}{M_{solute}\times W_{solvent}\text{ in grams}}[/tex]
Where,
[tex]m_{solute}[/tex] = Given mass of solute (NaCl) = 7.57 g
[tex]M_{solute}[/tex] = Molar mass of solute (NaCl) = 58.44 g/mol
[tex]W_{solvent}[/tex] = Mass of solvent (liquid X) = 350.0 g
Putting values in above equation, we get:
[tex]\text{Molality of }NaCl=\frac{7.57\times 1000}{58.44\times 350.0}\\\\\text{Molality of }NaCl=0.370m[/tex]
To calculate the depression in freezing point, we use the equation:
[tex]\Delta T=iK_fm[/tex]
where,
i = Vant hoff factor = 2
[tex]K_f[/tex] = molal freezing point depression constant = 6.90°C/m
m = molality of solution = 0.370 m
Putting values in above equation, we get:
[tex]\Delta T=2\times 6.90^oC/m.g\times 0.370m\\\\\Delta T=5.11^oC[/tex]
Depression in freezing point is defined as the difference in the freezing point of water and freezing point of solution.
[tex]\Delta T=\text{freezing point of water}-\text{freezing point of solution}[/tex]
[tex]\Delta T[/tex] = 5.11 °C
Freezing point of water = 0°C
Freezing point of solution = ?
Putting values in above equation, we get:
[tex]5.106^oC=0^oC-\text{Freezing point of solution}\\\\\text{Freezing point of solution}=-5.11^oC[/tex]
Hence, the freezing point of solution is -5.11°C
