At –10.5 °C (a common temperature for household freezers), what is the maximum m
ID: 1080470 • Letter: A
Question
At –10.5 °C (a common temperature for household freezers), what is the maximum mass of fructose (C6H12O6) you can add to 1.00 kg of pure water and still have the solution freeze? Assume that fructose is a molecular solid and does not ionize when it dissolves in water. Kf values are given here.
(°C/m)
Normal freezing
point (°C)
(°C/m)
Normal boiling
point (°C)
Solvent Formula Kf value*(°C/m)
Normal freezing
point (°C)
Kb value(°C/m)
Normal boiling
point (°C)
water H2O 1.86 0.00 0.512 100.00 benzene C6H6 5.12 5.49 2.53 80.1 cyclohexane C6H12 20.8 6.59 2.92 80.7 ethanol C2H6O 1.99 –117.3 1.22 78.4 carbontetrachloride CCl4 29.8 –22.9 5.03 76.8 camphor C10H16O 37.8 176
Explanation / Answer
depression in freezing point = freezing point of pure water - freezing point of solution
depression in freezing point = 0 - (-10.5)
depression in freezing point = 10.5 C
now
we know that
depression in freezing point = Kf x molality
Kf for water = 1.86 C/ m
so
10.5 = 1.86 x molality
molality = 5.645 m
now
molality = moles of solute / mass of water (kg)
5.645 = moles of solute / 1
moles of solute = 5.645 mol
now
mass of solute fructose = moles x molar mass
mass of solute fructose = 5.645 mol x 180 g/mol
mass of solute fructose = 1016.13 g
so
1016.13 grams of fructose can be added
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