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Question 16.10: CALCULATING A VAPOR PRESSURE FROM ΔG° The value of ΔG°f at 2...

CALCULATING A VAPOR PRESSURE FROM ΔG°

The value of ΔG°_{f} at 25 °C for gaseous mercury is 31.85 kJ/mol. What is the vapor pressure of mercury at 25 °C?

STRATEGY
The vapor pressure (in atm) equals K_{sp} for the reaction

Hg(l) \rightleftharpoons  Hg(g)             K_{p}  =  P_{Hg}

Hg(l) is omitted from the equilibrium constant expression because it is a pure liquid.
Because the standard state for elemental mercury is the pure liquid, ΔG°_{f} = 0 for Hg(l) and ΔG° for the vaporization reaction simply equals ΔG°_{f} for Hg(31.85 kJ/mol). We can calculate K_{p} from the equation ΔG° = -RT ln K_{p}, as in Worked Example 16.9.

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ln K_{p}  =  \frac{- ΔG°}{RT}  =  \frac{-(31.85  ×  10^{3}  J/mol)}{[8.314  J/(K  ·  mol)](298  K)} = -12.86.

K_{p}  =  antiln  (-12.86)  =  e^{-12.86}  =  2.6  ×  10^{-6}

Since K_{p} is defined in units of atmospheres, the vapor pressure of mercury at 25 °C is 2.6 × 10^{-6} atm(0.0020 mm Hg). Because the vapor pressure is appreciable and mercury is toxic in the lungs, mercury should not be handled without adequate ventilation.

BALLPARK CHECK
ΔG°is positive, so the vaporization reaction should not proceed very far before reaching equilibrium. Thus, K_{p} should be less than 1, in agreement with the solution.

16.10

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