A KCl solution is prepared by dissolving 40.0 g KCl (molar mass = 74.55 g/mol) in 250.0 g of water (molar mass = 18.01 g/mol) at 25°C. What is the vapor pressure of the solution…

Question

asked Nov 3, 2020 155k views

1 Answer

Pfitz · Answer 1 · 2020-11-09T04:42:44+0000

Answer: Option (B) is the correct answer.

Step-by-step explanation:

The given data is as follows.

mass of KCl = 40 g, mass of water = 250.0 g

Hence, number of moles of KCl will be calculated as follows.

No. of moles =
$\frac{mass}{\text{molar mass}}$

=
(40 g)/(74.55 g/mol)

= 0.537 mol

Number of moles of water will be calculated as follows.

No. of moles =
$\frac{mass}{\text{molar mass}}$

=
(250 g)/(18.01 g/mol)

= 13.9 mol

Also, mole fraction of KCl will be calculated as follows.

$x_(KCl) = \frac{\text{moles of KCl}}{\text{total no. of moles}}$

=
(0.537 mol)/(0.537 mol + 13.9 mol)

=
(0.537 mol)/(14.416 mol)

= 0.037

Hence, calculate the vapor pressure of the solution as follows.

(p^(o) - p^(solution))/(p^(o)) = i * x_(2)

Here, i = 2 because KCl on dissociation produces 2 ions that is,
K^(+) and
Cl^(-) .

(23.76 mm Hg - p^(solution))/(23.76 mm Hg) = 2 * 0.037

p^(solution) = 22.1 mm Hg

Thus, we can conclude that the vapor pressure of the given solution is 22.1 mm Hg.