Q.Vapour pressure of pure water at 298 K is 23.8 mm Hg. 50 g of urea () is dissolved in 850 g of water. Calculate the vapour pressure of water for this solution and its relative lowering.
The key idea is Raoult’s law for a non-volatile solute: the vapour pressure of the solution equals the mole fraction of solvent times the pure solvent vapour pressure. For 50 g urea in 850 g water at 298 K, the vapour pressure is 23.4 mm Hg and the relative lowering is 0.0173.
Why this approach works
When a non-volatile solute like urea dissolves in water, it reduces the number of solvent molecules at the surface that can escape into vapour. Raoult’s law captures this: the vapour pressure of the solution () is directly proportional to the mole fraction of the solvent (). The lowering of vapour pressure () relative to the pure solvent’s vapour pressure () is simply the mole fraction of the solute — a neat result that avoids calculating directly if only the relative lowering is asked.
We need both the actual vapour pressure and the relative lowering, so we’ll compute mole fractions first.
Step-by-step solution
1. Find the molar masses
Urea, :
, , ,
Molar mass = .
Water, :
,
Molar mass = .
2. Calculate moles of each component
Moles of urea:
.
Moles of water:
.
3. Find mole fractions
Total moles:
.
Mole fraction of water (solvent):
.
Mole fraction of urea (solute):
.
Notice — always a good check. Here , within rounding.
4. Apply Raoult’s law for vapour pressure
Raoult’s law: , where .
.
Rounding to three significant figures: .
5. Compute relative lowering of vapour pressure
Relative lowering = .
From Raoult’s law, this equals :
.
Alternatively, directly:
(slight difference due to rounding ). Using the exact mole fraction is more accurate.
A common mistake is to use masses directly in Raoult’s law instead of mole fractions. Always convert to moles first — the law depends on the number of particles, not their mass.
For a non-volatile solute in a volatile solvent:
6. Final values
Vapour pressure of solution: (to three significant figures).
Relative lowering: (or ).
The vapour pressure of the solution is and the relative lowering is .
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