A suggested mechanism for the gas phase decomposition of nitrous oxide is: step 1 slow: N,0 N2 +0 step 2 fast: N,0 +0→N2 + 02 (1) What is the equation for the overall reaction? Use the smallest integer coefficients possible. If a box is not needed, leave it blank. (2) Which species acts as a reaction intermediate? Enter formula. If none, leave box blank: (3) Complete the rate law for the overall reaction that is consistent with this mechanism. (Use the form k[A]"|B]"... , where 'l' is understood (so don't write it) for m, n etc.) Rate =

Chemistry & Chemical Reactivity
9th Edition
ISBN:9781133949640
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Chapter14: Chemical Kinetics: The Rates Of Chemical Reactions
Section: Chapter Questions
Problem 12PS: The reaction 2 NO(g) + 2 H2(g) N2(g) + 2 H2O(g) was studied at 904 C, and the data in the table...
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A suggested mechanism for the gas phase decomposition of nitrous oxide is:
step 1 slow: N,0 N2 +0
step 2 fast: N,0 +0→N2 + 02
(1) What is the equation for the overall reaction? Use the smallest integer coefficients possible. If a box is not needed, leave it blank.
(2) Which species acts as a reaction intermediate? Enter formula. If none, leave box blank:
(3) Complete the rate law for the overall reaction that is consistent with this mechanism.
(Use the form k[A]"|B]"... , where 'l' is understood (so don't write it) for m, n etc.)
Rate =
Transcribed Image Text:A suggested mechanism for the gas phase decomposition of nitrous oxide is: step 1 slow: N,0 N2 +0 step 2 fast: N,0 +0→N2 + 02 (1) What is the equation for the overall reaction? Use the smallest integer coefficients possible. If a box is not needed, leave it blank. (2) Which species acts as a reaction intermediate? Enter formula. If none, leave box blank: (3) Complete the rate law for the overall reaction that is consistent with this mechanism. (Use the form k[A]"|B]"... , where 'l' is understood (so don't write it) for m, n etc.) Rate =
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