Consider a hypothetical ionic compound AB (comprised of A+ and B¯ ions). Given the following enthalpy data and using a Born-Haber cycle calculation, predict AHlattice in kJ mol-¹. (s) + B(s) → AB(s) ArH = -378 kJ mol-1 (s) → A(g) ArH = 93 kJ mol-1 ³(s) → B(g) ArH = 104 kJ mol-1 First ionization energy of A(g) = 478 kJ mol-1 Electron affinity enthalpy of B(g) (exothermic) = -327 kJ mol-¹

Chemistry & Chemical Reactivity
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Chapter5: Principles Of Chemical Reactivity: Energy And Chemical Reactions
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Consider a hypothetical ionic compound AB (comprised of A+ and B¯ ions).
Given the following enthalpy data and using a Born-Haber cycle calculation, predict AHlattice in kJ mol-¹.
A(s) + B(s) → AB(s) ArH = -378 kJ mol-¹
A(s) → A(g) A₁H = 93 kJ mol-¹
B(s) → B(g) ArH = 104 kJ mol-¹
First ionization energy of A(g) = 478 kJ mol-¹
Electron affinity enthalpy of B(g) (exothermic) = -327 kJ mol-¹
Transcribed Image Text:Consider a hypothetical ionic compound AB (comprised of A+ and B¯ ions). Given the following enthalpy data and using a Born-Haber cycle calculation, predict AHlattice in kJ mol-¹. A(s) + B(s) → AB(s) ArH = -378 kJ mol-¹ A(s) → A(g) A₁H = 93 kJ mol-¹ B(s) → B(g) ArH = 104 kJ mol-¹ First ionization energy of A(g) = 478 kJ mol-¹ Electron affinity enthalpy of B(g) (exothermic) = -327 kJ mol-¹
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