(s) + Cl -1(g) → NaCl(s) ΔH° = −788.5 kJ Cl2(g) → 2 Cl(g) ΔH° = 243.6 kJ Na(g) → Na+1 (g) + e−1 ΔH° = 496.0 kJ 2Na(s) → Na(g) ΔH° = 109.0 kJ Cl(g) + e−1 → Cl−1(g) ΔH° = −349.0 kJ b. Use the nonsequential steps from the Born-Haber cycle to calculate ΔH°lattice energy of MgF2(s): F2(g) → 2 F(g) ΔH° = 159 kJ Mg(s) + F2(g) → MgF2(s) ΔH° = −1123 kJ Mg(g) → Mg+1(g) + e−1 ΔH° = 738 kJ Mg+(g) → Mg2+(g) + e−1 ΔH° = 1450 kJ Mg(s) → Mg(g) ΔH° = 148 kJ F(g) + e−1 → F−1(g) ΔH° = −328

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Chapter6: Thermochemistry
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a. Use the nonsequential steps from the Born-Haber cycle to calculate ΔH°formation of NaCl(s):
Na+1 (s) + Cl -1(g) → NaCl(s) ΔH° = −788.5 kJ
Cl2(g) → 2 Cl(g) ΔH° = 243.6 kJ
Na(g) → Na+1 (g) + e−1 ΔH° = 496.0 kJ

2Na(s) → Na(g) ΔH° = 109.0 kJ
Cl(g) + e−1 → Cl−1(g) ΔH° = −349.0 kJ

b. Use the nonsequential steps from the Born-Haber cycle to calculate ΔH°lattice energy of MgF2(s):
F2(g) → 2 F(g) ΔH° = 159 kJ
Mg(s) + F2(g) → MgF2(s) ΔH° = −1123 kJ
Mg(g) → Mg+1(g) + e−1 ΔH° = 738 kJ

Mg+(g) → Mg2+(g) + e−1 ΔH° = 1450 kJ
Mg(s) → Mg(g) ΔH° = 148 kJ
F(g) + e−1 → F−1(g) ΔH° = −328 kJ

 
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