13. Using the data in Appendix C (attached), calculate AG using AG° = AG products - AG, to #5 Determine whether the reaction will be spontaneous under standard conditions. C. H₂(g) + F₂(g) → 2HF (g) d. 2CH3OH(g) + H₂(g) → C₂H6(g) + 2H₂O(g) reactants'

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Chapter1: Chemical Foundations
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12. Using the data in Appendix C (attached), calculate AG using AG = AH-TAS for each of the following reactions:
a. H₂(g) + F₂(g) → 2HF (g)
b. 2CH3OH(g) + H₂(g) → C₂H6(g) + 2H₂O(g)
13. Using the data in Appendix C (attached), calculate AG° using AG = AG products - EAGT
to #5 Determine whether the reaction will be spontaneous under standard conditions.
C.
H₂(g) + F₂(g) → 2HF (g)
d. 2CH₂OH(g) + H₂(g) → C₂H6(g) + 2H₂O(g)
14. Methanol (CH3OH) can be made by the controlled oxidation of methane (CH4):
1
CH₂(g) + O₂(g) → CH₂OH(g)
e. Using the data in Appendix C (attached), calculate AH° and AS° for this reaction.
f.
How is AG expected to vary with increasing temperature?
reactants'
Transcribed Image Text:12. Using the data in Appendix C (attached), calculate AG using AG = AH-TAS for each of the following reactions: a. H₂(g) + F₂(g) → 2HF (g) b. 2CH3OH(g) + H₂(g) → C₂H6(g) + 2H₂O(g) 13. Using the data in Appendix C (attached), calculate AG° using AG = AG products - EAGT to #5 Determine whether the reaction will be spontaneous under standard conditions. C. H₂(g) + F₂(g) → 2HF (g) d. 2CH₂OH(g) + H₂(g) → C₂H6(g) + 2H₂O(g) 14. Methanol (CH3OH) can be made by the controlled oxidation of methane (CH4): 1 CH₂(g) + O₂(g) → CH₂OH(g) e. Using the data in Appendix C (attached), calculate AH° and AS° for this reaction. f. How is AG expected to vary with increasing temperature? reactants'
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