In a mixture of A and B having vapour pressure of pure A and pure B are 400 mm Hg and 600 mm Hg respectively, the mole fraction of B in the liquid phase is 0.5. Calculate total vapour pressure and mole fraction of A and B in the vapour phase.
500, 0.4, 0.6
Total vapour pressure = sum of vapour pressures of pure compounds
Vapour pressure of pure compound is equal to the product of pressure and mole fraction of compound.
where and are mole fraction.
Mole fraction:
By solving, we get
Now,
So, the correct option is A(500, 0.4, 0.6).