Question

Benzene and toluene form ideal solution over the entire range of composition. The vapour pressure of pure benzene and toluene at 300 K are 50.71 mm Hg and 32.06 mm Hg respectively. Calculate the mole fraction of benzene in vapour phase if 80 g of benzene is mixed with 100 g of toluene.

Answer 1

Molar mass of benzene (C₆H₆) = 6 × 12 + 6 × 1

= 78 g mol^-1

Molar mass of toluene (C₆H₅CH₃) = 7 × 12 + 8 × 1

= 92 g mol^-1

Now, no. of moles present in 80 g of benzene = `80/78  "mol"` = 1.026 mol

And, no. of moles present in 100 g of toluene = `100/92  "mol"` = 1.087 mol

∴ Mole fraction of benzene, x_b = `(1.026)/(1.026 + 1.087)` = 0.486

And, mole fraction of toluene, x_t = 1 − 0.486 = 0.514

It is given that the vapour pressure of pure benzene, `"p"_"b"^0` = 50.71 mm Hg

And, vapour pressure of pure toluene, `"p"_"t"^0` = 32.06 mm Hg

Therefore, the partial vapour pressure of benzene, `"p"_"b" = "x"_"b" xx "p"_"b"^0`

= 0.486 × 50.71

= 24.65 mm Hg

And, partial vapour pressure of toluene, `"p"_"t" = "x"_"t" xx "p"_"t"^0`

= 0.514 × 32.06

= 16.48 mm Hg

As a result, the mole fraction of benzene in the vapour phase is as follows:

`"p"_"b"/("p"_"b" + "p"_"t")`

= `24.65/(24.65+ 16.48)`

= `24.65/41.13`

= 0.599

= 0.6