1 mole of non-volatile solution is dissolved in 2 mole of water the vapour pressure of solution relative to that of water is
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The relative lowering of vapour pressure of a solution is given by
(1)
Where,
= Vapour pressure of the pure solvent (that is water)
p1 = Vapour pressure of the solution
x2 = Mole fraction of the solute
However,
Where, n2 = Number of moles of solute
n1 = Number of moles of solvent
Therefore
we are given that the number of moles of solute is one and that of solvent is 2. Therefore
x2 = 1 / (1 + 2) = 1 / 3
Substituting the value of x2 in (1), we get
(p01 - p1) / p01 = 1 / 3
This gives p1 / p01 = 2 / 3
(1)
Where,
= Vapour pressure of the pure solvent (that is water)
p1 = Vapour pressure of the solution
x2 = Mole fraction of the solute
However,
Where, n2 = Number of moles of solute
n1 = Number of moles of solvent
Therefore
we are given that the number of moles of solute is one and that of solvent is 2. Therefore
x2 = 1 / (1 + 2) = 1 / 3
Substituting the value of x2 in (1), we get
(p01 - p1) / p01 = 1 / 3
This gives p1 / p01 = 2 / 3
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