6. Consider the reaction: NO2(g) + CO(g) - NO(g) + CO₂(g) a. What would be the rate law for the reaction if it were a single-step, elementary reaction? b. The initial rate of the reaction was measured at several different concentrations of the reactants with the following results: [CO] (M) Initial Rate (M/s) [NO₂] (M) 0.10 0.10 0.0021 0.20 0.10 0.0084 0.20 0.20 0.0084 Determine the rate law for this reaction, and the value of the rate constant (including units).

Chemistry: Principles and Reactions
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Author:William L. Masterton, Cecile N. Hurley
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Chapter11: Rate Of Reaction
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6. Consider the reaction: NO2(g) + CO(g) ->> NO(g) + CO2(g)
a.
What would be the rate law for the reaction if it were a single-step, elementary reaction?
b. The initial rate of the reaction was measured at several different concentrations of the reactants with the
following results:
Initial Rate (M/s)
[NO₂] (M)
0.10
[CO] (M)
0.10
0.0021
0.20
0.10
0.0084
0.20
0.20
0.0084
Determine the rate law for this reaction, and the value of the rate constant (including units).
Transcribed Image Text:6. Consider the reaction: NO2(g) + CO(g) ->> NO(g) + CO2(g) a. What would be the rate law for the reaction if it were a single-step, elementary reaction? b. The initial rate of the reaction was measured at several different concentrations of the reactants with the following results: Initial Rate (M/s) [NO₂] (M) 0.10 [CO] (M) 0.10 0.0021 0.20 0.10 0.0084 0.20 0.20 0.0084 Determine the rate law for this reaction, and the value of the rate constant (including units).
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