5) Use the free energies of formation given below to calculate the equilibrium constant (K) for the following reaction at 298 K. (A B) cpsnc nsdo () Svods ori to lls (C avods ot to 2 HNO3(aq) + NO(g) → 3 NO2(g) + H20(1) smul K= ? AG°f (kJ/mol) -110.9 87.6 51.3 -237.1 onon ( A) 1.15 × 10-9 B) 0.980 C) 8.71 × 108 D) 1.02 E) 5.11 × 10-4 oim t gnier ng DA or oisluole (S oini aniwollol orl 00cH SI+ (9)s 8.280 0.02 e.EE (lomLD1 HA

Principles of Modern Chemistry
8th Edition
ISBN:9781305079113
Author:David W. Oxtoby, H. Pat Gillis, Laurie J. Butler
Publisher:David W. Oxtoby, H. Pat Gillis, Laurie J. Butler
Chapter14: Chemical Equilibrium
Section: Chapter Questions
Problem 15P
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5) Use the free energies of formation given below to calculate the equilibrium constant
(K) for the following reaction at 298 K.
(A
B) cpsnc
nsdo ()
Svods ori to lls (C
avods ot to
2 HNO3(aq) + NO(g) → 3 NO2(g) + H20(1)
smul K= ?
AG°f (kJ/mol) -110.9
87.6
51.3
-237.1
onon (
A) 1.15 × 10-9
B) 0.980
C) 8.71 × 108
D) 1.02
E) 5.11 × 10-4
oim t gnier ng DA or oisluole (S
oini aniwollol orl
00cH SI+ (9)s
8.280
0.02
e.EE (lomLD1 HA
Transcribed Image Text:5) Use the free energies of formation given below to calculate the equilibrium constant (K) for the following reaction at 298 K. (A B) cpsnc nsdo () Svods ori to lls (C avods ot to 2 HNO3(aq) + NO(g) → 3 NO2(g) + H20(1) smul K= ? AG°f (kJ/mol) -110.9 87.6 51.3 -237.1 onon ( A) 1.15 × 10-9 B) 0.980 C) 8.71 × 108 D) 1.02 E) 5.11 × 10-4 oim t gnier ng DA or oisluole (S oini aniwollol orl 00cH SI+ (9)s 8.280 0.02 e.EE (lomLD1 HA
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