7. 2NH₂NO3(s)- 8. H₂O(1) H₂O(s) 9. 30gig)→20,(g) 10. NH₂Cl(s)→→NH₂ + (aq)+CI (aq) =-26.0 kJ/mol AHjs = +6.01 kJ/mol AH=+285.4kJ/mol = +14.7kJ/mol : والد

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
Chapter18: Principles Of Chemical Reactivity: Entropy And Free Energy
Section18.5: Entropy Changes And Spontaneity
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B. Under which conditions (always, never, high T, low T) will the following reactions
proceed?
AH = +1270 kJ/mol
All = -206.1 kJ/mol
FOR
AH-92.22 kJ/mol
Afl = +131.3 kJ/mol
AH = -3352 kJ/mol
$371
AH-164.1 kJ/mol
7. 2NH₂NO3(s)-2N gg) → H₂O(g) + O₂(g) = -236.0 kJ/mol
8. H₂O(1) H₂O(s)
▸
AHjs = +6.01 kJ/mol
9. 30g/g)→20,(g)
AH=+28.4kJ/mol
10. NH₂Cl(s)→→NH₂ + (aq)+CI (aq)
3/= +14.7kJ/mol
Transcribed Image Text:B. Under which conditions (always, never, high T, low T) will the following reactions proceed? AH = +1270 kJ/mol All = -206.1 kJ/mol FOR AH-92.22 kJ/mol Afl = +131.3 kJ/mol AH = -3352 kJ/mol $371 AH-164.1 kJ/mol 7. 2NH₂NO3(s)-2N gg) → H₂O(g) + O₂(g) = -236.0 kJ/mol 8. H₂O(1) H₂O(s) ▸ AHjs = +6.01 kJ/mol 9. 30g/g)→20,(g) AH=+28.4kJ/mol 10. NH₂Cl(s)→→NH₂ + (aq)+CI (aq) 3/= +14.7kJ/mol
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