Atkins' Physical chemistry
Atkins' Physical chemistry
11th Edition
ISBN: 9780198814740
Author: ATKINS, P. W. (peter William), 1940- (author.)
Publisher: Oxford University Press,
Question
Book Icon
Chapter 4, Problem 4B.13BE

(i)

Interpretation Introduction

Interpretation: The enthalpy of vaporization of hexane has to be estimated.

Concept introduction: The Trouton’s rule states that all liquid shows same entropy of vaporization at their boiling points.  Mathematically, Trouton’s rule is stated as follows:

    ΔSvaporization=10.5×R

(i)

Expert Solution
Check Mark

Answer to Problem 4B.13BE

The enthalpy of vaporization of hexane is 29853.18Jmol-1_.

Explanation of Solution

The change in entropy of hexane is calculated by the Trouton’s formula.

    ΔSvaporization=10.5×R                                                                                     (1)

Where,

  • ΔSvaporization is change in entropy of vaporization.
  • R is gas constant.

The value of gas constant R is 8.314JK-1mol-1.

Substitute the value of R in equation (1).

    ΔSvaporization=10.5×8.314JK-1mol-1=87.29JK-1mol-1

Therefore, the change in entropy of vaporization of hexane is 87.29JK-1mol-1.

The enthalpy of vaporization is calculated by the following formula.

    ΔHvaporization=ΔSvaporization×T                                                                          (2)

It is given that the temperature T is 69.0°C.

The conversion of °C in K is done as,

    1°C=273K

The conversion of 69.0°C in K is done as,

    69.0°C=69.0+273K=342K

Therefore, the temperature (T) is 342K.

Substitute the value of ΔSvaporization and T in equation (2).

    ΔHvaporization=87.29JK-1mol-1×342K=29853.18Jmol-1_

Hence, the enthalpy of vaporization of hexane is 29853.18Jmol-1_.

(ii)

Interpretation Introduction

Interpretation: The vapour pressure at 25C and at 60C has to be estimated.

Concept introduction: The Trouton’s rule states that all liquid shows same entropy of vaporization at their boiling points.  Mathematically Trouton’s rule is stated as follows.

    ΔSvaporization=10.5×R

(ii)

Expert Solution
Check Mark

Answer to Problem 4B.13BE

The vapour pressure at 25C and at 60C are 0.184atm_ and 0.729atm_ respectively.

Explanation of Solution

The vapour pressure at 298K is calculated by the Clausius- Clapeyron  formula.

    ln(p2p1)=ΔHvaporizationR(1T1-1T2)                                                                (3)

Where,

  • p1 and p2 are the pressures.
  • ΔHvaporization is the enthalpy of vaporization.
  • T1 and T2 are the temperatures.
  • R is the gas constant.

For 25oC:

The boiling point of hexane is calculated at 1atm pressure.

Therefore, pressure p1=1atm.

It is given that the temperature is 69.0C.

The conversion of °C in K is done as,

    1°C=273K

The conversion of 69.0°C in K is done as,

    69.0°C=69.0+273K=342K

Therefore, the temperature (T1) is 342K.

It is given that the temperature is 25C.

The conversion of C in K is done as,

    1C=273K

The conversion of 25C in K is done as,

    25C=25+273K=298K

Therefore, the temperature T2 is 298K.

The enthalpy of vaporization for hexane is 29853.18Jmol-1.

Substitute the values of p1,T1,T2,ΔHvaporization and R in equation (3).

    ln(p21atm)=29853.18Jmol-18.314JK-1mol-1(1342K-1298K)ln(p21atm)=3950.712mol-1K(0.00292K1-0.00335K1)ln(p21atm)=-1.69p2=e1.69×1atm

Or,

    p2=0.184atm_

Hence, the vapour pressure at 25C is 0.184atm_.

For 60oC:

The boiling point of hexane is calculated at 1atm pressure.

Therefore, pressure p1=1atm.

It is given that the temperature is 69.0C.

The conversion of °C in K is done as,

    1°C=273K

The conversion of 69.0°C in K is done as,

    69.0°C=69.0+273K=342K

Therefore, the temperature (T1) is 342K.

It is given that the temperature (T2) is 60C.

The conversion of C in K is done as,

    1C=273K

The conversion of 60C in K is done as,

    60C=60+273K=333K

Therefore, the temperature T2 is 333K.

The enthalpy of vaporization for hexane is 29853.18Jmol-1.

Substitute the values of p1,T1,T2,ΔHvaporization and R in equation (3).

    ln(p21atm)=29853.18Jmol-18.314JK-1mol-1(1342K-1333K)ln(p21atm)=3950.712mol-1K(0.00292K1-0.00300K1)ln(p21atm)=-0.316p2=e0.316×1atm

Or,

    p2=0.729atm_

Hence, the vapour pressure at 60C is 0.729atm_.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Knowledge Booster
Background pattern image
Recommended textbooks for you
Text book image
Chemistry
Chemistry
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Cengage Learning
Text book image
Chemistry
Chemistry
ISBN:9781259911156
Author:Raymond Chang Dr., Jason Overby Professor
Publisher:McGraw-Hill Education
Text book image
Principles of Instrumental Analysis
Chemistry
ISBN:9781305577213
Author:Douglas A. Skoog, F. James Holler, Stanley R. Crouch
Publisher:Cengage Learning
Text book image
Organic Chemistry
Chemistry
ISBN:9780078021558
Author:Janice Gorzynski Smith Dr.
Publisher:McGraw-Hill Education
Text book image
Chemistry: Principles and Reactions
Chemistry
ISBN:9781305079373
Author:William L. Masterton, Cecile N. Hurley
Publisher:Cengage Learning
Text book image
Elementary Principles of Chemical Processes, Bind...
Chemistry
ISBN:9781118431221
Author:Richard M. Felder, Ronald W. Rousseau, Lisa G. Bullard
Publisher:WILEY