Some measurements of the initial rate of a certain reaction are given in the table below. [N:] [H.] initial rate of reaction 0.756M 0.169M 5.00 x 10*M/s 0.186M 0.169 M 3.03 х 103 MIS olo 0.756M 0.0761M 2.25 x 10ʻMIS Use this information to write a rate law for this reaction, and calculate the value of the rate constant k. Round your value for the rate constant to 3 significant digits. Also be sure your answer has the correct unit symbol. rate = k I Ox10 On k = 0 ?
Some measurements of the initial rate of a certain reaction are given in the table below. [N:] [H.] initial rate of reaction 0.756M 0.169M 5.00 x 10*M/s 0.186M 0.169 M 3.03 х 103 MIS olo 0.756M 0.0761M 2.25 x 10ʻMIS Use this information to write a rate law for this reaction, and calculate the value of the rate constant k. Round your value for the rate constant to 3 significant digits. Also be sure your answer has the correct unit symbol. rate = k I Ox10 On k = 0 ?
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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![Some measurements of the initial rate of a certain reaction are given in the table below.
[N-]
H2 initial rate of reaction
4
0.756M 0.169M
5.00 x 10*M/s
0.186M 0.169M
3.03 × 10°M/s
olo
0.756M 0.0761 M
2.25 x 10*M/s
Ar
Use this information to write a rate law for this reaction, and calculate the value of the rate constant k.
Round your value for the rate constant to 3 significant digits. Also be sure your answer has the correct unit symbol.
rate
= k []
Ox10
k = 0](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F9add9dee-1f9f-4ea0-8cd8-9e476bfd6ff4%2Fea3073c4-b3f8-4101-bc6b-31e70c6bbef1%2F463tfr_processed.png&w=3840&q=75)
Transcribed Image Text:Some measurements of the initial rate of a certain reaction are given in the table below.
[N-]
H2 initial rate of reaction
4
0.756M 0.169M
5.00 x 10*M/s
0.186M 0.169M
3.03 × 10°M/s
olo
0.756M 0.0761 M
2.25 x 10*M/s
Ar
Use this information to write a rate law for this reaction, and calculate the value of the rate constant k.
Round your value for the rate constant to 3 significant digits. Also be sure your answer has the correct unit symbol.
rate
= k []
Ox10
k = 0
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