A student determines the value of the equilibrium constant to be 2.48x10-25 for the following reaction. CH4(9) + H₂O(g) 3H₂(g) + CO(g) Based on this value of Keq: AG for this reaction is expected to be (greater, less) Calculate the free energy change for the reaction of 1.56 moles of CH4(g) at standard conditions at 298K. AGºrxn= kJ than zero.

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A student determines the value of the equilibrium constant to be 2.48x10-25 for the following reaction.
CH4(9) + H₂O(g)
3H₂(g) + CO(g)
Based on this value of Keg:
AG for this reaction is expected to be (greater, less)
Calculate the free energy change for the reaction of 1.56 moles of CH4(g) at standard conditions at 298K.
AGOrxn=
kJ
999
5
T
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B
Acd...
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N
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than zero.
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Transcribed Image Text:Submit Answer R F A student determines the value of the equilibrium constant to be 2.48x10-25 for the following reaction. CH4(9) + H₂O(g) 3H₂(g) + CO(g) Based on this value of Keg: AG for this reaction is expected to be (greater, less) Calculate the free energy change for the reaction of 1.56 moles of CH4(g) at standard conditions at 298K. AGOrxn= kJ 999 5 T Scholarship Ameri... bio 1108 chat [Review Topics] [References] Use the References to access important values if needed for this question. B Acd... Have Changes in... N Retry Entire Group 9 more group attempts remaining Cengage Learning Cengage Technical Support & 7 8 1 than zero. K P Previous SAVAGE X FEM Next Save and Exit A
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