Could someone tell me what I'm doing wrong? Thanks.
Question:
Estimate the value of the equilibrium constant at 645K for each of the following reactions.
2NO
2(g)
N
2O
4(g)
Attempted Solution:
[tex]\Delta G = \Delta G^0 + RT ln Q[/tex]
[tex]0 = \Delta G^0 + RT ln K[/tex]
[tex]K = \exp(- \frac{ \Delta G^0 }{RT})[/tex]
ΔG
f° NO
2(g) = 51.3 kJ/mol
ΔG
f° N
2O
4(g) = 99.8 kJ/mol
ΔG
rxn° = (1 mol * 99.8 kJ/mol) - (2 mol * 51.3 kJ/mol) = -2.8 kJ/mol
[tex]K = \exp(-\frac{-2800J}{8.314\frac{J}{mol K} 645 K}) = \exp(0.522) = 1.6856[/tex]