Lowering of vapour pressure due to a solute in 1 molal aqueous solution at 100- C isA- 13-44 mm HgB- 14-12 mm HgC- 13-2 mm HgD- 35-2 mm Hg

The correct option is A 13.44 mm HgWe know that, Mw_B=xB × 1000/(l X_B)Mw_A [ X_B=mole fraction of solute; MW_A=mole mass of solvent ] 1=x_B × 1000/(l ...

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Standard XII

Chemistry

Relative Lowering of Vapour Pressure

Lowering of v...

Question

Lowering of vapour pressure due to a solute in 1 molal aqueous solution at $100^{\circ} C$ is

13.44 mm Hg

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14.12 mm Hg

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13.2 mm Hg

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35.2 mm Hg

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Solution

The correct option is A 13.44 mm Hg
We know that,
$M w_{B} = \frac{x B \times 1000}{(l - X_{B}) M w_{A}}$
$[XB=mole fraction of soluteMWA=mole mass of solvent]$
$1 = \frac{x_{B} \times 1000}{(l - x_{B}) \times 18}$
$x_{B} = 0.0176$
$x_{A} = 1 - 0.0176 = 0.9824$
Now,
$P = P^{\circ} x_{A} = 760 \times 0.9824 = 746.62$
$Δ P = P^{\circ} - P = 760 - 746.62 = 13.41 m m H g (a p p r o x)$

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Lowering of vapour pressure due to a solute in 1 molal aqueous solution at 100∘C is

The correct option is A 13.44 mm HgWe know that, MwB=xB×1000(l−XB)MwA [XB=mole fraction of soluteMWA=mole mass of solvent] 1=xB×1000(l−xB)×18 xB=0.0176 xA=1−0.0176=0.9824 Now, P=P∘xA=760×0.9824=746.62 ΔP=P∘−P=760−746.62=13.41mmHg(approx)

Lowering of vapour pressure due to a solute in 1 molal aqueous solution at $100^{\circ} C$ is