Given:
Sucrose solution
=4%(w/w) M=342gmol−1 Freezing point of solution
=271.15K Freezing point of pure water
=273.15K Glucose solution
=5% M=180gmol−1 To calculate:
Freezing point of
5% glucose solution.
Formula:
ΔTf​=i×Kf​×m m=Kg of solventmoles of solute​ moles=molar massmass​ Sucrose solution is
4%(w/w) which means there is 4.0 grams of sucrose dissolved in
100g of solution.
Mass of solution
= mass of solute + mass of solvent
100.0g=4.0g+ mass of solvent.
Hence, mass of solvent
=100.0−4.0=96.0g 96g×1000g1kg​=0.096kg Moles of solute
moles=molar massmass​=342gmol−14.0g​ =0.011695moles Molality of solution:
m=kg of solventmoles of solute​ =0.096kgwater0.011695moles​=0.1218m Sucrose is a non-electrolyte, hence
i=1 ΔTf​=Freezing point of solvent −Freezing point of solution ΔTf​=273.15K−271.15K=2.00K ΔTf​=i×Kf​×m 2.00K=i×Kf​×0.1218 Kf​=16.42Km−1 For glucose solution,
Glucose solution is
5%(w/w) which means there is 5.0 grams of glucose dissolved in
100g of solution.
Mass of solution
= mass of solute + mass of solvent
100.0g=5.0g+ mass of solvent.
Hence, mass of solvent
=100.0−5.0=95.0g 95.0g×1000g1kg​=0.095kg Moles of solute
moles=molar massmass​ =180gmol−15.0g​=0.0277moles Molality of solution:
m=kg of solventmoles of solute​ =0.095kgwater0.0277moles​=0.2923m Glucose is a non - electrolyte, hence
i=1 ΔTf​=i×Kf​×m ΔTf​=1×16.42×0.2923ΔTf​=4.801Km−1ΔTf​=Freezing point of solvent−Freezing point of solution4.801=273.15K−Freezing point of solutionFreezing point of solution=273.15K−4.801K=268.35KThus, the freezing point of the glucose solution is
268.35K.