2. [latex]\Delta {G}_{298}^{\circ }=\Delta {H}_{298}^{\circ }-T\Delta {S}_{298}^{\circ }[/latex]

[latex]\Delta {G}_{298}^{\circ }=100 - 298.15\times 250\frac{\text{J}}{\text{mol}\cdot\text{K}}\left(\frac{\text{1 kJ}}{\text{1000 J}}\right)=\text{25.5 kJ/mol}[/latex]

The [latex]\Delta {G}_{298}^{\circ }>0[/latex], so the reaction is nonspontaneous at room temperature.

• ΔG = ΔH − TΔS
• [latex]0=100-T\left[250\frac{\text{J}}{\text{mol}\cdot\text{K}}\left(\frac{\text{1 kJ}}{\text{1000 J}}\right)\right][/latex]
• T = 400 K

Above 400 K, ΔG will become negative, and the reaction will become spontaneous.

4. The reactions are spontaneous or nonspontaneous as follows:

1. [latex]\Delta {G}_{298}^{\circ }=\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{products}\right)-\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{reactants}\right)[/latex]
   [latex]\Delta {G}_{298}^{\circ }=\left[\text{1 mol}\left(\text{0 kJ/mol}\right)+\text{1 mol}\left(\text{0 kJ/mol}\right)\right]-\left[\text{1 mol}\left(-\text{465.1 kJ/mol}\right)\right]=465.1[/latex] nonspontaneous
2. [latex]\Delta {G}_{298}^{\circ }=\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{products}\right)-\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{reactants}\right)[/latex]
   [latex]\Delta {G}_{298}^{\circ }=\left[\text{2 mol}\left(-\text{53.43 kJ/mol}\right)\right]-\left[\text{1 mol}\left(\text{0 kJ/mol}\right)+\text{1 mol}\left(\text{0 kJ/mol}\right)\right]=-\text{106.86 kJ}[/latex] spontaneous
3. [latex]\Delta {G}_{298}^{\circ }=\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{products}\right)-\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{reactants}\right)[/latex]
   [latex]\Delta {G}_{298}^{\circ }=\left[\text{1 mol}\left(-\text{53.6 kJ/mol}\right)\right]-\left[\text{1 mol}\left(\text{0 kJ/mol}\right)+\text{1 mol}\left(\text{0 kJ/mol}\right)\right]=-\text{53.6 kJ}[/latex] spontaneous
4. [latex]\Delta {G}_{298}^{\circ }=\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{products}\right)-\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{reactants}\right)[/latex]
   [latex]\Delta {G}_{298}^{\circ }=\left[\text{1 mol}\left(-\text{1132.19 kJ/mol}\right)+\text{1 mol}\left(-\text{228.59 kJ/mol}\right)\right]-\left[\text{2 mol}\left(-\text{441.5 kJ/mol}\right)+\text{1 mol}\left(-\text{394.36 kJ/mol}\right)\right]=-\text{83.4 kJ}[/latex] spontaneous
5. [latex]\Delta {G}_{298}^{\circ }=\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{products}\right)-\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{reactants}\right)[/latex]
   [latex]\Delta {G}_{298}^{\circ }=\left[\text{1 mol}\left(\text{0 kJ/mol}\right)+\text{2 mol}\left(-\text{228.59 kJ/mol}\right)\right]-\left[\text{1 mol}\left(-\text{50.5 kJ/mol}\right)+\text{1 mol}\left(\text{0 kJ/mol}\right)\right]=-\text{406.7 kJ}[/latex] spontaneous
6. [latex]\Delta {G}_{298}^{\circ }=\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{products}\right)-\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{reactants}\right)[/latex]
   [latex]\Delta {G}_{298}^{\circ }=\left[\text{1 mol}\left(-\text{62.5 kJ/mol}\right)+\text{1 mol}\left(-\text{29.25 kJ/mol}\right)\right]-\left[\text{1 mol}\left(\text{66.8 kJ/mol}\right)+\text{3 mol}\left(\text{0 kJ/mol}\right)\right]=-\text{30.0 kJ}[/latex] spontaneous

6. (a) The standard free energy of formation is the standard free energy change for [latex]\frac{1}{4}{\text{P}}_{4}\left(s\right)+\frac{3}{2}{\text{H}}_{2}\left(g\right)+{\text{2O}}_{2}\left(g\right)\longrightarrow {\text{H}}_{3}{\text{PO}}_{4}\left(l\right)[/latex]. We can use a Hess’s law-like approach. Note that adding the first reaction plus three times the second reaction plus the third reaction gives, after canceling terms:

[latex]{\text{P}}_{4}\left(s\right)+{\text{6H}}_{2}\left(g\right)+{\text{8O}}_{2}\left(g\right)\longrightarrow {\text{4H}}_{3}{\text{PO}}_{4}\left(l\right)[/latex]

[latex]\Delta {G}_{\text{rxn}}^{\circ }=\left[\left(-2697.0\right)+3\left(-457.18\right)+\left(-428.66\right)\right]\text{kJ/mol}=-\text{4497.2 kJ/mol}[/latex]

Dividing this result by four gives the equation of interest, and it gives −1124.3 kJ/mol for the standard free energy change.

(b) The calculation agrees with the value in Standard Thermodynamic Properties for Selected Substances because free energy is a state function (just like the enthalpy and entropy), so its change depends only on the initial and final states, not the path between them.

8. (a) Using the data in Standard Thermodynamic Properties for Selected Substances, determine [latex]\Delta {G}_{298}^{\circ }:[/latex]

[latex]\Delta {G}_{298}^{\circ }=2\Delta {G}_{\text{f}}^{\circ }\left(\text{Hg}\left(l\right)\right)+\Delta {G}_{\text{f}}^{\circ }\left({\text{O}}_{2}\left(g\right)\right)-2\Delta {G}_{\text{f}}^{\circ }\left(\text{HgO}\left(s,\text{red}\right)\right)=\left\{2\left(0\right)+0 - 2\left(-58.5\right)\right\}\text{kJ/mol}=\text{117.0 kJ/mol}[/latex]

From its value at 298.15 K, the reaction is nonspontaneous

(b) requires the ratio of the standard enthalpy change to the standard entropy change:

• [latex]\Delta {H}_{298}^{\circ }=2\Delta {H}_{\text{f}}^{\circ }\left(\text{Hg}\left(l\right)\right)+\Delta {H}_{\text{f}}^{\circ }\left({\text{O}}_{2}\left(g\right)\right)-2\Delta {H}_{\text{f}}^{\circ }\left(\text{HgO}\left(s,\text{red}\right)\right)[/latex]
  = [2(0) + 0 − 2(−90.83)] kJ/mol = 181.66 kJ/mol
• [latex]\Delta {S}_{298}^{\circ }=2{S}_{298}^{\circ }\left(\text{Hg}\left(l\right)\right)+{S}_{298}^{\circ }\left({\text{O}}_{2}\left(g\right)\right)-2{S}_{298}^{\circ }\left(\text{HgO}\left(s,\text{red}\right)\right)[/latex]
  = [2(75.9) + 205.0 − 2(70.29)] J/K·mol = 216.42 J/K·mol
• [latex]T=\frac{\Delta {H}_{298}^{\circ }}{\Delta {S}_{298}^{\circ }}=\frac{181.66\times {10}^{3}\text{J/mol}}{\text{216.42 J/K\cdot mol}}=\text{839 K}=566^{\circ C}[/latex]

Above 566 °C the process is spontaneous.

10. ΔG° for each is as follows:

1. ΔG° = −RT ln K_P = −(8.314 J K⁻¹)(2273.15 K)(ln 4.1 [latex]\times [/latex] 10⁻⁴) = 147 kJ = 1.5 [latex]\times [/latex] 10² kJ
2. ΔG° = −(8.314 J K⁻¹)(673.15 K)(ln 50.0) = −21,893 J = 21.9 kJ
3. ΔG° = −(8.314 J K⁻¹)(1253.15 K)(ln 1.67) = −5.34 kJ
4. ΔG° = −(8.314 J K⁻¹)(1173.15 K)(ln 1.04) = −0.383 kJ
5. ΔG° = −(8.314 J K⁻¹)(298.15 K)(ln 7.2 [latex]\times [/latex] 10⁻⁴) = 17,937 J = 18 kJ
6. ΔG° = −(8.314 J K⁻¹)(298.15 K)(ln 3.3 [latex]\times [/latex] 10⁻¹³) = 71,240 J = 71 kJ

12. Equilibrium constants are calculated from [latex]\text{ln}K=\frac{-\Delta G^{\circ }}{RT}[/latex]. Note that K is a function of T and thus changes as T changes.

1. [latex]\text{ln}K=-\left[\frac{-9.2\times {10}^{3}\text{J}}{\left({\text{8.314 J mol}}^{-\text{1}}{\text{K}}^{-\text{1}}\times \text{298.15 K}\right)}\right]=3.71[/latex], K = 41
2. [latex]\text{ln}K=\frac{-7300\text{J}}{\left(8.314\text{J}{\text{mol}}^{-\text{1}}{\text{K}}^{-\text{1}}\times 298.15\text{K}\right)}=-2.945[/latex], K = 0.053
3. [latex]\text{ln}K=-\left[\frac{-79\times {10}^{3}\text{J}}{\left({\text{8.314 J mol}}^{-\text{1}}{\text{K}}^{-\text{1}}\times \text{298.15 K}\right)}\right]=31.870[/latex], K = 6.9 [latex]\times [/latex] 10¹³
4. [latex]\text{ln}K=-\left[\frac{-1.6\times {10}^{3}\text{J}}{\left({\text{8.314 J mol}}^{-\text{1}}{\text{K}}^{-\text{1}}\times \text{298.15 K}\right)}\right]=0.645[/latex], K = 1.9
5. [latex]\text{ln}K=\frac{-\text{8}\times {10}^{3}\text{J}}{\left(8.314\text{J}{\text{mol}}^{-\text{1}}{\text{K}}^{-\text{1}}\times 298.15\text{K}\right)}=-3.227[/latex], K = 0.04

14. In each of the following, the value of ΔG is not given at the temperature of the reaction. Therefore, we must calculate ΔG from the values ΔH° and ΔS and then calculate ΔG from the relation ΔG = ΔH° − TΔS°.

(a)

[latex]\begin{array}{l}\\ \Delta H^{\circ }=2\Delta {H}_{{\text{f}}_{{\text{OF}}_{2}\left(g\right)}}^{\circ }-\Delta {H}_{{\text{f}}_{{\text{O}}_{2}\left(g\right)}}^{\circ }-\Delta {H}_{{\text{f}}_{{\text{F}}_{2}\left(g\right)}}^{\circ }=\text{2 mol}\left(-22{\text{kJ mol}}^{-\text{1}}\right)-0 - 2\left(0\right)=-\text{44 kJ}=-4.4\times {10}^{4}\text{J}\\ \Delta S^{\circ }=2\Delta {S}_{{\text{OF}}_{2}\left(g\right)}^{\circ }-\Delta {S}_{{\text{O}}_{2}\left(g\right)}^{\circ }-2\Delta {S}_{{\text{F}}_{2}\left(g\right)}^{\circ }=2\left(247.3\right)-205.03 - 2\left(202.7\right)=-115.83\text{J}\\ \Delta G=\Delta H^{\circ }-T\Delta S^{\circ }=-\text{44,000 J}-373.15\left(-115.83\text{J}\right)=-\text{778 J}\\ \text{ln}K=\frac{\Delta G}{-RT}=\frac{-778}{-8.314\times 373.15}=0.2507,K=1.29\end{array}[/latex]

(b)

[latex]\begin{array}{l}\Delta H^{\circ }=2\Delta {H}_{{\text{f}}_{\text{IBr}\left(g\right)}}^{\circ }-\Delta {H}_{{\text{f}}_{{\text{I}}_{2}\left(s\right)}}^{\circ }-\Delta {H}_{{\text{f}}_{{\text{Br}}_{2}\left(l\right)}}^{\circ }=2\left(\text{40,800 J}\right)=\text{81,600 J}\\ \Delta S^{\circ }=2\Delta {S}_{\text{IBr}\left(g\right)}^{\circ }-\Delta {S}_{{\text{I}}_{2}\left(s\right)}^{\circ }-2\Delta {S}_{{\text{Br}}_{2}\left(l\right)}^{\circ }=2\left(258.66\right)-116.14 - 152.23=248.95\\ \Delta G=81,600 - 273.15\left(248.95\right)=1.36\times {10}^{4}\text{J}\\ \text{ln}K=\frac{13,600}{-8.314\left(273.15\right)}=-5.989,K=2.51\times {10}^{-3}\end{array}[/latex]

(c)

[latex]\begin{array}{l}\Delta H^{\circ }=2\Delta {H}_{{\text{f}}_{{\text{Li}}_{2}{\text{CO}}_{3}\left(s\right)}}^{\circ }+\Delta {H}_{{\text{f}}_{{\text{H}}_{2}\text{O}\left(g\right)}}^{\circ }-2\Delta {H}_{{\text{f}}_{\text{LiOH}\left(g\right)}}^{\circ }-\Delta {H}_{{\text{f}}_{\text{C}{\text{O}}_{2}\left(g\right)}}^{\circ }=-1215.6 - 241.82 - 2\left(-487.23\right)-\left(-393.51\right)=-\text{44 kJ}\\ \Delta S^{\circ }=\Delta {S}_{{\text{f}}_{{\text{Li}}_{2}{\text{CO}}_{3}\left(s\right)}}^{\circ }+\Delta {S}_{{\text{f}}_{{\text{H}}_{2}\text{O}\left(g\right)}}^{\circ }-2\left(\Delta {S}_{{\text{f}}_{\text{LiOH}\left(g\right)}}^{\circ }\right)-\Delta {S}_{{\text{f}}_{{\text{CO}}_{2}\left(g\right)}}^{\circ }=90.4+188.71 - 2\left(50.2\right)-213.6=-34.9{\text{J K}}^{-\text{1}}\\ \Delta G=\Delta H^{\circ }-T\Delta S^{\circ },T=575^{\circ C}+273.15=\text{848.15 K}\\ \Delta G=-89,400 - 848.15\left(-34.9\right)=-5.9800\times {10}^{-4}\\ \text{ln}K=\frac{\Delta G}{-RT}=\frac{-5.98\times {10}^{4}}{-8.314\times 848.15}=8.4816,K=4.83\times {10}^{3}\end{array}[/latex]

(d)

[latex]\begin{array}{l}\Delta H^{\circ }=\Delta {H}_{{\text{f}}_{\text{NO}\left(g\right)}}^{\circ }+\Delta {H}_{{\text{f}}_{{\text{NO}}_{2}\left(g\right)}}^{\circ }-\Delta {H}_{{\text{f}}_{{\text{N}}_{2}\text{O}\left(g\right)}}^{\circ }=90.25+33.2 - 83.72=\text{39.73 kJ}\\ \Delta S^{\circ }=\Delta {S}_{\text{NO}\left(g\right)}^{\circ }+\Delta {S}_{{\text{f}}_{{\text{NO}}_{2}\left(g\right)}}^{\circ }-\Delta {S}_{{\text{N}}_{2}{\text{O}}_{3}\left(g\right)}^{\circ }=210.65+239.9 - 312.2={\text{138.35 J K}}^{-1}\\ \Delta G=\Delta H^{\circ }-T\Delta S^{\circ }=39,730 - 263.15\left(138.35\right)=3323\\ \text{ln}K=\frac{\Delta G}{-RT}=\frac{3323}{-8.314\times 263.15}=-1.519,K=0.219\end{array}[/latex]

(e)

[latex]\begin{array}{l}\Delta H^{\circ }=2\Delta {H}_{{\text{f}}_{{\text{SnCl}}_{4}\left(g\right)}}^{\circ }-\Delta {H}_{{\text{f}}_{{\text{SnCl}}_{4}\left(l\right)}}^{\circ }=-471.5{\text{kJ mol}}^{-\text{1}}-\left(-511.2{\text{kJ mol}}^{-\text{1}}\right)={\text{39.7 kJ mol}}^{-1}\\ \Delta S^{\circ }=\Delta {S}_{{\text{SnCl}}_{4}\left(g\right)}^{\circ }-{\Delta }_{S}^{{\text{SnCl}}_{4}\left(l\right)}=-366{\text{J K}}^{-\text{1}}{\text{mol}}^{-\text{1}}\\ \Delta G=\Delta H^{\circ }-T\Delta S^{\circ }=39,700 - 473.15\left(107\right)=-\text{10.927 kJ}\\ \text{ln}K=\frac{-10,927}{-8.314\times 473.15}=2.778,K=16.1\end{array}[/latex]

16. The standard free energy change is [latex]\Delta {G}_{298}^{\circ }=-RT\text{ln}K=\text{4.84 kJ/mol}[/latex].

When reactants and products are in their standard states (1 bar or 1 atm), Q = 1. As the reaction proceeds toward equilibrium, the reaction shifts left (the amount of products drops while the amount of reactants increases): Q < 1, and [latex]\Delta {G}_{298}[/latex] becomes less positive as it approaches zero. At equilibrium, Q = K, and ΔG = 0.

18. This reaction will become spontaneous when ΔG goes from positive to negative, or at the point where ΔG = 0. [latex]\Delta G^{\circ }=\Delta H^{\circ }-T\Delta S^{\circ }T=\frac{\Delta H}{\Delta S}[/latex]

Calculate ΔH° and ΔS°:

[latex]\begin{array}{l}\Delta H^{\circ }=\Delta {H}_{\text{NO}\left(g\right)}^{\circ }+\Delta {H}_{{\text{NO}}_{2}\left(g\right)}^{\circ }-\Delta {H}_{{\text{N}}_{2}{\text{O}}_{3}\left(g\right)}^{\circ }=\left(90.25+33.2 - 83.72\right)\text{kJ}=\text{39.73 kJ}\\ \Delta S^{\circ }={S}_{\text{NO}\left(g\right)}^{\circ }+{S}_{{\text{NO}}_{2}\left(g\right)}^{\circ }-{S}_{{\text{N}}_{2}{\text{O}}_{3}\left(g\right)}^{\circ }=\left(210.65+239.9 - 312.2\right){\text{J K}}^{-\text{1}}=138.35{\text{J K}}^{-\text{1}}\\ \Delta G^{\circ }=\Delta H^{\circ }-T\Delta S^{\circ }=\text{39.73 kJ}-\left(\text{298.15 K}\right)\left({\text{0.13835 kJ K}}^{-\text{1}}\right)=-\text{1.519 kJ}\end{array}[/latex]

Thus this reaction is spontaneous at 298 K because ΔG is negative at this temperature, and because TΔS° term is negative, ΔG will become progressively more negative as the temperature increases above 298 K. Thus the temperature at which ΔG first becomes negative must lie at a temperature lower than 298 K. We can find this temperature by substituting into [latex]T=\frac{\Delta H}{\Delta S}[/latex].

[latex]T=\frac{\Delta H}{\Delta S}=\frac{\text{39,700 J}}{{\text{138.35 J K}}^{-\text{1}}}=\text{287 K}[/latex]

The reaction will be spontaneous at temperatures greater than 287 K.

20. Find ΔG° for the reaction, and from ΔG° find K.

[latex]\begin{array}{l}\Delta G^{\circ }=3\Delta {G}_{\text{S}\left(s\right)}^{\circ }+2\Delta {G}_{{\text{H}}_{2}\text{O}\left(g\right)}^{\circ }-2\Delta {G}_{{\text{H}}_{2}\text{S}\left(g\right)}^{\circ }-\Delta {G}_{{\text{SO}}_{2}\left(s\right)}^{\circ }=3\left(0\right)+2\left(-228.59\right)-2\left(-33.6\right)-\left(-300.19\right)=-\text{89.79 kJ}\\ \Delta G^{\circ }=-RT\text{ln}K=-2.303RT\text{ log }K\\ \\ K=\text{antilog}\left(\frac{-\Delta G}{2.303RT}\right)=\left[\frac{89,790}{2.303\left(8.314\right)\left(298.15\right)}\right]=\text{antilog }15.729=5.35\times {10}^{15}\end{array}[/latex]

The process is exothermic.

22. The equilibrium may be written as

[latex]{\text{NH}}_{4}\text{Cl}\left(s\right)\rightleftharpoons \text{HCl}\left(g\right)+{\text{NH}}_{3}\left(g\right){K}_{P}={P}_{{\text{NH}}_{3}}{P}_{\text{HCl}}={x}^{2}[/latex]

to help simplify the mathematics. Use the standard free energy change to determine the equilibrium constant for the reaction: [latex]\Delta {G}_{298}^{\circ }=\text{91.1 kJ/mol}[/latex], K_P = 1.1 [latex]\times [/latex] 10⁻¹⁶. At equilibrium, the partial pressures are equal so that [latex]x=\sqrt{{K}_{P}}=1.0\times {10}^{-\text{8}}\text{atm}[/latex]. This is the maximum pressure of the gases under the stated conditions.

24. The reaction is [latex]{\text{2CO}}_{2}\left(g\right)\longrightarrow \text{2CO}\left(g\right)+{\text{O}}_{2}\left(g\right)[/latex].

• ΔH° = (2 mol)(−110.52 kJ mol⁻¹) + (1 mol)(0) − (2 mol)(−393.51 kJ mol⁻¹) = 565.98 kJ
• ΔS° = (2 mol)(197.56 J K⁻¹ mol⁻¹) + (1 mol)(205.03 J K⁻¹ mol⁻¹) − (2 mol)(−393.51 kJ mol⁻¹) = 172.95 J K⁻¹
• ΔG° = (565,980 J) − (1273 K)(172.95 J K⁻¹) = 345,810 J

[latex]\begin{array}{rll}{}\text{log }K&=&\frac{\text{345,810 J}}{\left(-2.303\right)\left(8.314{\text{J K}}^{-\text{1}}\right)\left(1273K\right)}=-14.1975\\{}K&=&6.494\times {10}^{-15}=\frac{{\left({P}_{\text{CO}}\right)}^{2}\left({P}_{{\text{O}}_{2}}\right)}{\left({P}_{{\text{CO}}_{2}}\right)}=\frac{{\left(2x\right)}^{2}\left(x\right)}{{\left(1.15 - 2x\right)}^{2}}\approx \frac{{\left(2x\right)}^{2}\left(x\right)}{{\left(1.15\right)}^{2}}\\ 4{x}^{3}&=&8.59\times {10}^{-15}\\ x&=&1.29\times {10}^{-5}\text{atm}={P}_{{\text{O}}_{2}}\end{array}[/latex]

26. The equilibrium constant allows the calculation of [latex]\Delta {G}_{298}^{\circ }[/latex].

[latex]\begin{array}{rll}\Delta {G}_{298}^{\circ }&=&-RT\text{ln}K=-2.303RT\text{log}K=-2.303\left(8.314{\text{J K}}^{-\text{1}}{\text{mol}}^{-\text{1}}\right)\left(298.2K\right)\left(\text{log}1.3\times {10}^{3}\right)\\{}&=&-17.78{\text{kJ mol}}^{-\text{1}}=1.8{\text{kJ mol}}^{-\text{1}}\left(\text{2 significant figures}\right)\end{array}[/latex]

The strength of the bond (66.5 kJ) means that it requires 66.5 kJ to pull 1 mol of bonds apart. In other words, [latex]\Delta {H}_{298}^{\circ }=-\text{66.5 kJ}[/latex]. The values of [latex]\Delta {G}_{298}^{\circ }[/latex] and [latex]\Delta {H}_{298}^{\circ }[/latex] allow us to calculate ΔS° by use of the equation

[latex]\begin{array}{rll}\Delta {G}_{298}^{\circ }&=&\Delta {H}_{298}^{\circ }-T\Delta {H}_{298}^{\circ }\\{}\Delta S^{\circ }&=&-\frac{\Delta {G}_{298}^{\circ }-\Delta {H}_{298}^{\circ }}{T}=-\frac{\left(-\text{17,780 J}\right)-\left(-\text{66,500 J}\right)}{\text{298.2 K}}=-163{\text{J K}}^{-\text{1}}=-\text{0.16 kJ}\end{array}[/latex]

28. (a) Find the equilibrium constant by first calculating the number of moles of each component.

• molar masses: SbCl₅ = 299.11 g mol⁻¹
• SbCl₃ = 228.11 g mol⁻¹
• Cl₂ = 70.9054 g mol⁻¹

[latex]\begin{array}{rll}{}{\text{mol SbCl}}_{5}&=&\frac{\text{3.85 g}}{299.01g{\text{mol}}^{-\text{1}}}=\text{0.0129 mol}\\ {\text{mol SbCl}}_{3}&=&\frac{\text{9.14 g}}{228.11{\text{g mol}}^{-\text{1}}}=\text{0.0401 mol}\\ {\text{mol Cl}}_{2}&=&\frac{\text{2.84 g}}{70.9054{\text{g mol}}^{-\text{1}}}=\text{0.0401 mol}\end{array}[/latex]

[latex]K=\frac{\left[{\text{SbCl}}_{3}\right]\left[C{l}_{2}\right]}{\left[{\text{SbCl}}_{5}\right]}=\frac{\left(\frac{\text{0.0401 mol}}{\text{5.00 L}}\right)\left(\frac{\text{0.0401 mol}}{\text{5.00 L}}\right)}{\left(\frac{\text{0.0129 mol}}{\text{5.00 L}}\right)}=0.0249{\text{mol L}}^{-\text{1}}[/latex]

At 448 °C = 721.15 K, [latex]\Delta G^\circ =-RT\text{ln}K=-\left(8.314{\text{J K}}^{-\text{1}}\right)\text{(721.15 K)(ln 0.0249)}=-\text{2.21}\times {10}^{4}\text{J}=-\text{22.1 kJ}[/latex]

(b) Determine the value of K and then determine the value of ΔG° from the value of K. Molar concentrations are required to find K. The concentration of Cl₂ at 1.00 atm and 975 K is determined from the ideal gas law, PV = nRT

[latex]\frac{n}{V}=\frac{P}{RT}=\frac{\text{1.00 atm}}{0.08206\frac{\text{L atm}}{\text{K mol}}\left(\text{975 K}\right)}=0.0125M[/latex]

Since the Cl₂ gas is 1.00% dissociated, the concentration of Cl₂ is 0.9900 [latex]\times [/latex] 0.0125 M = 0.0124 M. The concentration of Cl₂ is 2 [latex]\times [/latex] 0.0100 [latex]\times [/latex] 0.0125 = 0.000250 M (we have to use the factor of two since each dissociated Cl₂ molecule produces two Cl particles).

[latex]K=\frac{{\left[\text{Cl}\right]}^{2}}{\left[{\text{Cl}}_{2}\right]}=\frac{{0.00250}^{2}}{0.0125}=0.000500[/latex]

Using this result, ΔG° = −RT ln K = −8.314 J/mol K [latex]\times [/latex] 975 K ln (0.000500) = 61,600 J/mol = 61.6 kJ/mol.

30. The reaction of interest is: [latex]{\text{Ag}}_{2}\text{S}\left(s\right)\rightleftharpoons {\text{2Ag}}^{\text{+}}\left(aq\right)+{\text{S}}^{2-}\left(aq\right){K}_{\text{sp}}=8\times {10}^{-51}[/latex]

[latex]\begin{array}{rll}\Delta {G}_{298}^{\circ }&=&-RT\text{ln}K\\ \Delta {G}_{298}^{\circ }&=&-8.314\times \text{298.15 ln}8\times {10}^{-51}\\ \Delta {G}_{298}^{\circ }&=&\text{286 kJ}\\{}\Delta {G}_{298}^{\circ }&=&\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{products}\right)-\sum \nu \Delta {G}_{\text{f}}^{\circ }\left(\text{reactants}\right)\end{array}[/latex]

[latex]\begin{array}{l}\\ 286=\left[\text{1 mol}\left(\Delta {G}_{\text{f}}^{\circ }{S}^{2-}\text{kJ/mol}\right)+\text{2 mol}\left(\text{77.1 kJ/mol}\right)\right]-\left[\text{1 mol}\left(-\text{39.5 kJ/mol}\right)\right]\\ \Delta {G}_{\text{f}}^{\circ }{S}^{2-}=\text{90 kJ/mol}\end{array}[/latex]

32. The answers are as follows:

1. Under standard thermodynamic conditions, the temperature is 298 K, and the pressure of water vapor would be 1 atm (or 1 bar). Under these conditions, the evaporation is nonspontaneous as indicated by [latex]\Delta {G}_{298}^{\circ }>0[/latex]
2. [latex]\Delta {G}_{298}^{\circ }=-RT\text{ln}K[/latex], 8.58 [latex]\times [/latex] 10³ = −8.314 [latex]\times [/latex] 2981.15 ln K, K_p = 0.031
3. [latex]Q={P}_{{\text{H}}_{2}\text{O}}=\text{0.011 atm}[/latex], [latex]\Delta G=\Delta {G}_{298}^{\circ }+RT\text{ln}Q[/latex], ΔG = 8.58 [latex]\times [/latex] 10³ + (8.314 [latex]\times [/latex] 298 [latex]\times [/latex] ln 0.011) = −2.6 kJ, Under these conditions, the evaporation of water is spontaneous
4. [latex]{P}_{{\text{H}}_{2}\text{O}}[/latex] must always be less than K_p or less than 0.031 atm. 0.031 atm represents air saturated with water vapor at 25 °C, or 100% humidity.

34.The answers are as follows:

1. Nonspontaneous as [latex]\Delta {G}_{298}^{\circ }>0[/latex]
2. [latex]\Delta {G}_{298}^{\circ }=-RT\text{ln}K[/latex], [latex]\Delta G=1.7\times {10}^{3}+\left(8.314\times 335\times \text{ln}\frac{28}{128}\right)=-\text{2.5 kJ}[/latex]. The forward reaction to produce F6P is spontaneous under these conditions.

36. ΔG is negative as the process is spontaneous. ΔH is positive as with the solution becoming cold, the dissolving must be endothermic. ΔS must be positive as this drives the process, and it is expected for the dissolution of any soluble ionic compound.

38. The answers are as follows:

1. Increasing [latex]{P}_{{\text{O}}_{2}}[/latex] will shift the equilibrium toward the products, which increases the value of K. [latex]\Delta {G}_{298}^{\circ }[/latex] therefore becomes more negative.
2. Increasing [latex]{P}_{{\text{O}}_{2}}[/latex] will shift the equilibrium toward the products, which increases the value of K. [latex]\Delta {G}_{298}^{\circ }[/latex] therefore becomes more negative.
3. Increasing [latex]{P}_{{\text{O}}_{2}}[/latex] will shift the equilibrium the reactants, which decreases the value of K. [latex]\Delta {G}_{298}^{\circ }[/latex] therefore becomes more positive.