Consider the reaction: NO + 03 -> NO₂ + 0₂ The experimentally determined rate law for this reaction is: Rate = k[NO][03] The following mechanism was proposed: 1. NO -> N+O (slow) 2. N+03 -> NO₂ + 0 (fast) 3. 0+ 0 →» 0₂ (fast) Is this mechanism valid? Explain using the three criteria discussed in class.

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Chapter1: Chemical Foundations
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Consider the reaction: NO + 03 -> NO₂ + O₂
The experimentally determined rate law for this reaction is: Rate = k[NO][03]
The following mechanism was proposed:
1.
NO -> N + O
(slow)
2.
N+03 -> NO₂ + O
(fast)
3.
0 +0 -> O₂
(fast)
Is this mechanism valid? Explain using the three criteria discussed in class.
Transcribed Image Text:Consider the reaction: NO + 03 -> NO₂ + O₂ The experimentally determined rate law for this reaction is: Rate = k[NO][03] The following mechanism was proposed: 1. NO -> N + O (slow) 2. N+03 -> NO₂ + O (fast) 3. 0 +0 -> O₂ (fast) Is this mechanism valid? Explain using the three criteria discussed in class.
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