Question

100 g of liquid A (molar mass 140 g mol⁻¹) was dissolved in 1000 g of liquid B (molar mass 180 g mol⁻¹). The vapour pressure of pure liquid B was found to be 500 torr. Calculate the vapour pressure of pure liquid A and its vapour pressure in the solution if the total vapour pressure of the solution is 475 Torr.

Answer 1

Number of moles of liquid A, n_A = `100/140  "mol"`

= 0.714 mol

Number of moles of liquid B, n_B = `1000/180  "mol"`

= 5.556 mol

Then, the mole fraction of A, x_A = `"n"_"A"/("n"_"A"+"n"_"B")`

= `0.714/(0.714+5.556)`

= 0.114

And, mole fraction of B, x_B = 1 − 0.114 = 0.886

Vapour pressure of pure liquid B, `"p"_"B"^0` = 500 torr

Therefore, the vapour pressure of liquid B in the solution,

p_B = `"p"_"B"^0"x"_"B"`

= 500 × 0.886

= 443 torr

Total vapour pressure of the solution, p_total = 475 torr

∴ Vapour pressure of liquid A in the solution,

p_A = p_total − p_B

= 475 − 443

= 32 torr

Now,

p_A = `"p"_"A"^0"x"_"A"`

`=>"p"_"A"^0 = "p"_"A"/"x"_"A"`

= `32/0.114`

= 280.7 torr

Hence, the vapour pressure of pure liquid A is 280.7 torr.