9 gram anhydrous oxalic acid (mol. wt. = 90) was dissolved in 9.9 moles of water. If vapour pressure of pure water is p1° 1 the vapour pressure of solution is

Question

9 gram anhydrous oxalic acid (mol. wt. = 90) was dissolved in 9.9 moles of water. If vapour pressure of pure water is p1° 1 the vapour pressure of solution is (A) 0.99 p1° (B) 0.1 p1° (C) 0.90 p1° (D) 1.1 p1°

Tardigrade Admin · Accepted Answer

The total vapour pressure of a solution in this case only depends on vapour pressure of water as anhydrous oxalic acid is a non-volatile compound

∴

Vapour pressure of solution = vapour pressure of water

(p_{w})

According to Raoult's law

p_{w} = x_{w} p_{w}^{\circ}

Number of moles of oxalic acid

= \frac{9}{90} = 01

moles

∴ x_{w} = \frac{9.9}{9.9 + 0.1} = 0.99

\Rightarrow p_{s} = p_{w} = 0.99 \times p_{1}^{\circ}

Q. $9$ gram anhydrous oxalic acid (mol. wt. = $90$ ) was dissolved in $9.9$ moles of water. If vapour pressure of pure water is $p_{1}^{\circ} 1$ the vapour pressure of solution is

$0.99 p_{1}^{\circ}$

$0.1 p_{1}^{\circ}$

$0.90 p_{1}^{\circ}$

$1.1 p_{1}^{\circ}$

Q. 9 gram anhydrous oxalic acid (mol. wt. = 90) was dissolved in 9.9 moles of water. If vapour pressure of pure water is p1∘​1 the vapour pressure of solution is

0.99p1∘​

0.1p1∘​

0.90p1∘​

1.1p1∘​

Q. $9$ gram anhydrous oxalic acid (mol. wt. = $90$ ) was dissolved in $9.9$ moles of water. If vapour pressure of pure water is $p_{1}^{\circ} 1$ the vapour pressure of solution is

$0.99 p_{1}^{\circ}$

$0.1 p_{1}^{\circ}$

$0.90 p_{1}^{\circ}$

$1.1 p_{1}^{\circ}$