Atkins' Physical Chemistry
Atkins' Physical Chemistry
11th Edition
ISBN: 9780198769866
Author: ATKINS, P. W. (peter William), De Paula, Julio, Keeler, JAMES
Publisher: Oxford University Press
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Chapter 5, Problem 5F.3P
Interpretation Introduction

Interpretation: Whether the given mean activity coefficients for aqueous solution of NaCl at 25°C support the Debye-Huckel limiting law has to be confirmed.  Whether a better fit is obtained with the Davies equation has to be confirmed.

Concept introduction: The ionic strength is introduced in the Debye-Huckel limiting law which relates the activity coefficient as a function of the ionic strength of the solution.  It is dependent on the concentration of all the ions present in the solution.  It is a dimensionless quantity.  When the ionic strength of the solution is too high for the limiting law to be applicable, Davies equation is used which is an extended form of the Debye-Huckel limiting law.

Expert Solution & Answer
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Answer to Problem 5F.3P

The given mean activity coefficients for aqueous solution of NaCl at 25°C support the Debye-Huckel limiting law.  A better fir is obtained with the Davies equation.

Explanation of Solution

The ionic strength (I) of a solution is given by the equation,

    I=12izi2(bi/bο)                                                                                        (1)

The ionic strength of the aqueous solution of NaCl is given as,

    I=12(zNa+2bNa+bο+zCl+2bCl+bο)                                                                            (2)

Where,

  • zNa+ is the charge on the Na+ ion.
  • zCl- is the charge on the Cl- ion.
  • bNa+ is the ,molality of the Na+ ion.
  • bCl+ is the ,molality of the Cl- ion.
  • bο is 1molkg-1.

The dissociation of NaCl is represented by the equation.

    NaClNa++Cl

The molality of Na+ ion is equal to the molality of Cl- ion

Let molality of Na+ ion and Cl- ion be b.

The charge on the cation, Na+ (zNa+) is +1.

The charge on the anion, Cl- (zCl) is 1.

Substitute the values of zNa+, zCl-, bNa+ and bCl+ in equation (2).

    I=12((1)2bbο+(1)2bbο)=12(2bbο)=bbο

The Debye-Huckel limiting law is given as,

    logγ±=A|zNa+zCl-|I1/2                                                                                (3)

Where

  • γ± is the activity coefficient.
  • A is 0.509 for an aqueous solution at 25°C.
  • I is the dimensionless ionic strength.
  • zNa+ is the charge on the Na+ ion.
  • zCl- is the charge on the Cl- ion.

Substitute the values of I, zNa+ and zCl- in equation (3).

    logγ±=A|zNa+zCl-|I1/2=A|(+1)×(1)|bbο=Abbο

The data given is,

b/(mmolkg-1)1.02.05.010.020.0
γ±0.96490.95190.92750.90240.8712

The value of logγ±  and b calculated from the above data is as follows.

γ±b/(mmolkg-1)logγ±b
0.96491-0.015521
0.95192-0.021411.414214
0.92755-0.032692.236068
0.902410-0.04463.162278
0.871220-0.059884.472136

The graph between logγ± taken on the y axis and b taken on the x axis is shown as,

Atkins' Physical Chemistry, Chapter 5, Problem 5F.3P , additional homework tip  1

Therefore, the given mean activity coefficients for aqueous solution of NaCl at 25°C support the Debye-Huckel limiting law (logγ±=Abbο).

The Davies equation is given as,

    logγ±=A|z+z|I1/21+BI1/2+CI                                                                            (4)

Where

  • γ± is the activity coefficient.
  • A is 0.509 for an aqueous solution at 25°C.
  • I is the dimensionless ionic strength.
  • zNa+ is the charge on the Na+ ion.
  • zCl- is the charge on the Cl- ion.
  • B is a dimensionless constant.
  • C is a dimensionless constant.

Substitute the values of I, zNa+ and zCl- in equation (4).

    logγ±=A|(+1)×(1)|(bbο)1/21+B(bbο)1/2+C(bbο)1/2=A(bbο)1/21+B(bbο)1/2+C(bbο)1/2

For B(bbο)1/2>>1, the above equation can be written as,

  logγ±=C(bbο)A(bbο)1/2B(bbο)1/2=C(bbο)AB

The graph between logγ± taken on the y axis and b taken on the x axis is shown as,

Atkins' Physical Chemistry, Chapter 5, Problem 5F.3P , additional homework tip  2

In the above graph, the slope (C) is 0.0022 and the intercept on the y axis (AB) is 0.0177.

Therefore, an improved fir is obtained for the Davies equation, logγ±=C(bbο)AB.

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Chapter 5 Solutions

Atkins' Physical Chemistry

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