Connect 2-Year Online Access for General, Organic, and Biochemistry
Connect 2-Year Online Access for General, Organic, and Biochemistry
9th Edition
ISBN: 9781259677946
Author: Denniston
Publisher: Mcgraw-hill Higher Education (us)
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Chapter 6, Problem 6.74QP

(a)

Interpretation Introduction

Interpretation:

The boiling temperature of 1.50m urea has to be calculated.

Concept Introduction:

Elevation in boiling point:

Boiling point is the temperature at which vapor pressure becomes equal to atmospheric pressure.  If a non volatile solute is added then the vapor pressure get lowered.  So, more temperature has to be provided for vaporizing.  Hence the boiling point increases.

    ΔTb=kb(mparticles)

Where, ΔTb difference in temperature of pure solvent and solution, kb is boiling point elevation constant.

(a)

Expert Solution
Check Mark

Answer to Problem 6.74QP

The boiling temperature of 1.50m urea solution is 100.78oC.

Explanation of Solution

kb for aqueous solution is 0.52oCm.

So boiling temperature of 1.50m urea can be calculated as follows,

    ΔTb=kb(mparticles)=(0.52oCm)(1.5m)=0.78oCT1T2=0.78oC

Where T1 is the boiling point of the solution and T2 is the boiling point of the pure water solution.

Therefore boiling point of the solution is given below.

    T1T2=0.78oCT1100oC=0.78oCT1=0.78oC+100oC=100.78oC.

Boiling temperature of the solution is 100.78oC.

(b)

Interpretation Introduction

Interpretation:

The boiling temperature of 1.50mLiBr has to be calculated.

Concept Introduction:

Refer to part (a).

(b)

Expert Solution
Check Mark

Answer to Problem 6.74QP

The boiling temperature of 1.50mLiBr is 101.56oC.

Explanation of Solution

kb for aqueous solution is 0.52oCm.

LiBr being ionic compound, dissociate to form two particles.  So 1.50mLiBr is 3m(1.5m×2) particles.

So boiling temperature of 1.50mLiBr  can be calculated as follows,

    ΔTb=kb(mparticles)=(0.52oCm)(3m)=1.56oCT1T2=1.56oC

Where T1 is the boiling point of the solution and T2 is the boiling point of the pure water solution.

Therefore boiling point of the solution is given below.

    T1T2=1.56oCT1100oC=1.56oCT1=1.56oC+100oCT1=101.56oC.

The boiling temperature of the solution is 101.56oC.

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Chapter 6 Solutions

Connect 2-Year Online Access for General, Organic, and Biochemistry

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Solutions: Crash Course Chemistry #27; Author: Crash Course;https://www.youtube.com/watch?v=9h2f1Bjr0p4;License: Standard YouTube License, CC-BY