2. surrou. Calculate the enthalpy change to be expected for the reaction NaCl(s)→ NaCl(aq) where (s) and (aq) mean solid and aqueous, respectively. Use Hess's law, one of the three enthalpy changes that was measured in this experiment, and the data from the following table. Reaction* 1/2H₂(g) + 1/2Cl2(g) → HCl(g) Na(s) + 1/2O2(g) + 1/2H₂(g) → NaOH(s) Na(s) + 1/2Cl2(g) → NaCl(s) H₂(g) + 1/2O2(g) → H₂O(1) HCI(g) → HCl(aq) NaOH(s)→ NaOH(aq) * (g) = gas, (I) = liquid, (s) = solid, and (aq) = aqueous. Calculations: AH (kJ/mol) -92.3 -426.8 -411.1 -285.8 -75.2 -41.8 mys

Chemistry & Chemical Reactivity
9th Edition
ISBN:9781133949640
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Chapter12: The Solid State
Section12.3: Bonding In Ionic Compounds: Lattice Energy
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2.
surrou.
Calculate the enthalpy change to be expected for the reaction
NaCl(s)→ NaCl(aq)
where (s) and (aq) mean solid and aqueous, respectively. Use Hess's law, one of the three
enthalpy changes that was measured in this experiment, and the data from the following table.
Reaction*
1/2H₂(g) + 1/2C12(g) → HCl(g)
Na(s) + 1/2O2(g) + 1/2H₂(g) → NaOH(s)
Na(s) + 1/2Cl2(g) → NaCl(s)
H₂(g) + 1/2O2(g) → H₂O(l)
HCl(g) → HCl(aq)
NaOH(s)→ NaOH(aq)
* (g) = gas, (I) = liquid, (s) = solid, and (aq) = aqueous.
Calculations:
AH (kJ/mol)
-92.3
-426.8
-411.1
-285.8
-75.2
-41.8
mys D.HU-HOK
Transcribed Image Text:2. surrou. Calculate the enthalpy change to be expected for the reaction NaCl(s)→ NaCl(aq) where (s) and (aq) mean solid and aqueous, respectively. Use Hess's law, one of the three enthalpy changes that was measured in this experiment, and the data from the following table. Reaction* 1/2H₂(g) + 1/2C12(g) → HCl(g) Na(s) + 1/2O2(g) + 1/2H₂(g) → NaOH(s) Na(s) + 1/2Cl2(g) → NaCl(s) H₂(g) + 1/2O2(g) → H₂O(l) HCl(g) → HCl(aq) NaOH(s)→ NaOH(aq) * (g) = gas, (I) = liquid, (s) = solid, and (aq) = aqueous. Calculations: AH (kJ/mol) -92.3 -426.8 -411.1 -285.8 -75.2 -41.8 mys D.HU-HOK
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