The following initial rate data are for the oxidation of nitrogen monoxide by oxygen at 25 °C: 2 NO + 022 NO2 Initial Rate, M Experiment [NO]o, M [02]o, M s-1 1 7.64x10-3 4.64x10-3 2.31x10-3 2 1.53x10-2 4.64x10-3 9.28x10-3 3 7.64x10-3 9.28x10-3 4.63x10-3 4 1.53x10-2 9.28x10-3 1.86x10-2 Complete the rate law for this reaction in the box below. Use the form k[A]m[B]n, where '1' is understood for m or n and concentrations taken to the zero power do not appear. Don't enter 1 for m or n. Rate = From these data, the rate constant is M-2s-1.
The following initial rate data are for the oxidation of nitrogen monoxide by oxygen at 25 °C: 2 NO + 022 NO2 Initial Rate, M Experiment [NO]o, M [02]o, M s-1 1 7.64x10-3 4.64x10-3 2.31x10-3 2 1.53x10-2 4.64x10-3 9.28x10-3 3 7.64x10-3 9.28x10-3 4.63x10-3 4 1.53x10-2 9.28x10-3 1.86x10-2 Complete the rate law for this reaction in the box below. Use the form k[A]m[B]n, where '1' is understood for m or n and concentrations taken to the zero power do not appear. Don't enter 1 for m or n. Rate = From these data, the rate constant is M-2s-1.
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
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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Question
![The following initial rate data are for the oxidation of nitrogen monoxide by oxygen at 25
°C:
2 NO + 02–→2 NO2
Initial Rate, M
Experiment
[NO]o, M
[02]o, M
s-1
S
1
7.64x10-3
4.64x10-3
2.31x10-3
1.53x10-2
4.64x10-3
9.28x10-3
7.64x10-3
9.28x10-3
4.63×10-3
4
1.53x10-2
9.28x10-3
1.86x10-2
Complete the rate law for this reaction in the box below.
Use the form k[A]m[B]n , where '1' is understood for m or n and concentrations taken to the
zero power do not appear. Don't enter 1 for m or n.
Rate =
From these data, the rate constant is
M-2s-1.
3.](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F788121ef-4805-46b3-9141-6f4b24a2642f%2F0c384ab0-865c-46f7-86cc-3e82319639cb%2Fpgnni8a_processed.jpeg&w=3840&q=75)
Transcribed Image Text:The following initial rate data are for the oxidation of nitrogen monoxide by oxygen at 25
°C:
2 NO + 02–→2 NO2
Initial Rate, M
Experiment
[NO]o, M
[02]o, M
s-1
S
1
7.64x10-3
4.64x10-3
2.31x10-3
1.53x10-2
4.64x10-3
9.28x10-3
7.64x10-3
9.28x10-3
4.63×10-3
4
1.53x10-2
9.28x10-3
1.86x10-2
Complete the rate law for this reaction in the box below.
Use the form k[A]m[B]n , where '1' is understood for m or n and concentrations taken to the
zero power do not appear. Don't enter 1 for m or n.
Rate =
From these data, the rate constant is
M-2s-1.
3.
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