1). The coefficients in a reaction equation are not necessarily equal to the reaction orders, whereas the coefficients of an elementary step always equal the reaction orders of its rate law. Give one example and explain. 2. A reaction can be thermodynamically favorable, but kinetically unfavorable. What does that mean? When is a reaction thermodynamically or kinetically favorable or unfavorable? Choose a suitable reaction and draw energy diagrams to explain these concepts.

Chemistry for Today: General, Organic, and Biochemistry
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Chapter8: Reaction Rates And Equilibrium
Section: Chapter Questions
Problem 8.85E: Which sentence best describes the following reaction? 2H2(g)+O2(g)2H2O(l)+heat a. It is an...
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1). The coefficients in a reaction equation are not necessarily equal to the reaction orders, whereas the coefficients of an elementary step always equal the reaction orders of its rate law. Give one example and explain. 2. A reaction can be thermodynamically favorable, but kinetically unfavorable. What does that mean? When is a reaction thermodynamically or kinetically favorable or unfavorable? Choose a suitable reaction and draw energy diagrams to explain these concepts.
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