The reaction I (ag) + OCI (ag) → IO (ag) + Cl¯(aq) was studied, and the following data were obtained: I]o (mol/L) [OCI¯], (mol/L) Initial Rate (mol/L · s) 0.080 0.14 7.90 x 10-2 0.040 0.14 4.00 x 10–2 0.020 0.070 9.90 × 10–3 -2 0.16 0.070 7.90 x 10 What is the rate law? (Use k for the rate constant.) Rate = Calculate the value of the rate constant. k = L/mol · s Calculate the initial rate for an experiment where both I and OCI are initially present at 0.14 mol/L. Rate = mol/L · s
The reaction I (ag) + OCI (ag) → IO (ag) + Cl¯(aq) was studied, and the following data were obtained: I]o (mol/L) [OCI¯], (mol/L) Initial Rate (mol/L · s) 0.080 0.14 7.90 x 10-2 0.040 0.14 4.00 x 10–2 0.020 0.070 9.90 × 10–3 -2 0.16 0.070 7.90 x 10 What is the rate law? (Use k for the rate constant.) Rate = Calculate the value of the rate constant. k = L/mol · s Calculate the initial rate for an experiment where both I and OCI are initially present at 0.14 mol/L. Rate = mol/L · s
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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![The reaction
I (ag) + OCI (ag) → IO (ag) + Cl¯(aq)
was studied, and the following data were obtained:
I]o (mol/L) [OCI¯], (mol/L) Initial Rate (mol/L · s)
0.080
0.14
7.90 x 10-2
0.040
0.14
4.00 x 10–2
0.020
0.070
9.90 × 10–3
-2
0.16
0.070
7.90 x 10
What is the rate law?
(Use k for the rate constant.)
Rate =
Calculate the value of the rate constant.
k =
L/mol · s
Calculate the initial rate for an experiment where both I and OCI are initially present at 0.14 mol/L.
Rate =
mol/L · s](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2Fb987d8c1-664b-448b-b573-1ab7f66094f6%2F98cb164d-182b-47f1-91dc-e50c15bffc25%2Fnfgeflg_processed.png&w=3840&q=75)
Transcribed Image Text:The reaction
I (ag) + OCI (ag) → IO (ag) + Cl¯(aq)
was studied, and the following data were obtained:
I]o (mol/L) [OCI¯], (mol/L) Initial Rate (mol/L · s)
0.080
0.14
7.90 x 10-2
0.040
0.14
4.00 x 10–2
0.020
0.070
9.90 × 10–3
-2
0.16
0.070
7.90 x 10
What is the rate law?
(Use k for the rate constant.)
Rate =
Calculate the value of the rate constant.
k =
L/mol · s
Calculate the initial rate for an experiment where both I and OCI are initially present at 0.14 mol/L.
Rate =
mol/L · s
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