The synthesis of ethanol from ethylene and water proceeds according to the reaction C2H4(g) + H2O(1) = C2H5OH(1) where \Delta G\deg rxn = -116.6 kJ/mol. If the pressure of the vessel is 251 atm at 580 K, the Gibbs free energy is kJ/mol. (Watch units. Report answer to 1 decimal place and canvas will round where appropriate.)

Chemistry
10th Edition
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
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The synthesis of ethanol from ethylene and water proceeds according to the reaction C2H4(g) + H2O(1) = C2H5OH(1)
where \Delta G\deg rxn = -116.6 kJ/mol. If the pressure of the vessel is 251 atm at 580 K, the Gibbs free energy is
kJ/mol. (Watch units. Report answer to 1 decimal place and canvas will round where appropriate.)
Transcribed Image Text:The synthesis of ethanol from ethylene and water proceeds according to the reaction C2H4(g) + H2O(1) = C2H5OH(1) where \Delta G\deg rxn = -116.6 kJ/mol. If the pressure of the vessel is 251 atm at 580 K, the Gibbs free energy is kJ/mol. (Watch units. Report answer to 1 decimal place and canvas will round where appropriate.)
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