Concise Physical Chemistry

(Tina Meador) #1

c12 JWBS043-Rogers September 13, 2010 11:27 Printer Name: Yet to Come


VAPOR PRESSURE 187

found for component B dissolved in solvent A is true if we change the AB ratio and
start calling A the solute and B the solvent (on the right-hand side of Fig. 12.3).
Therefore we can obtain Henry’s law activities of both components, one from the
partial pressure of very dilute solutions of A in B and the other from very dilute
solutions of B in A.

12.6 VAPOR PRESSURE


Henry’s original (1803) paper dealt with the solubility of CO 2 in water, for which he
found that the partial pressure ofpCO 2 confined in a closed container over water is
directly proportional to the amount of CO 2 dissolved in the water. It was many years
later that his lawpCO 2 =kXCO 2 whereXCO 2 is the mole fraction of CO 2 dissolved
in water, was extended to the binary solutions of mutually miscible components just
discussed.
Let us go back now to Henry’s point of view and look atpCO 2 =kXCO 2 as a rela-
tionship telling us what the partial pressure of CO 2 , which we shall callcomponent 2,
will be over a solution that we have made up to have a mole fraction ofXCO 2. Notice
that we are looking at the same problem as Henry but from the opposite side. He was
thinking about the amount of gas dissolved in a solvent (water), and we are looking
at the pressure of solute leaving a solution that we have made up to some value ofX 2
and going into the gas phase above the solution. At equilibrium, it’s the same thing:

Component 2(solution)→←Component 2(g)

The critical condition for all the relatedcolligative properties(Section 12.8) is
a balance between the Gibbs free energy functions of two systems—for example,
gas-phase CO 2 and dissolved CO 2. The Gibbs free energy relationship at equilibrium
between dissolved component 2 and gas phase 2 is

μ 2 (sol)=μ 2 (g)

whereμ 2 (sol) designates the Gibbs free energy function of component 2 in solution.
We know from Chapters 6 and 7 that, for an ideal gas at constant temperature, we
have

dG=Vdp=

RT


p

dp

Integrating over the difference between the Gibbs function in an arbitrary state 2 and
a standard state pressure arbitrarily chosen as 1 bar, we get

G 2 =


∫Gp
2
G1bar

dG=RT

∫Gp
2
G1bar

dp
p

=RTln

p 2
1
Free download pdf