The integrated rate laws for zero-, first-, and second-order reaction may be arranged such that they resemble the equation for a straight line, y=mx+b. Order Integrated Rate Law Graph Slope 0 [A]=−kt+[A]0 [A] vs. t −k 1 ln[A]=−kt+ln[A]0 ln[A] vs. t −k 2 1[A]= kt+1[A]0 1[A] vs. t k The reactant concentration in a first-order reaction was 5.50×10−2 M after 25.0 s and 1.30×10−3 M after 100 s . What is the rate constant for this reaction? The reactant concentration in a second-order reaction was 0.250 M after 260 s and 6.60×10−2 M after 845 s . What is the rate constant for this reaction?
The integrated rate laws for zero-, first-, and second-order reaction may be arranged such that they resemble the equation for a straight line, y=mx+b. Order Integrated Rate Law Graph Slope 0 [A]=−kt+[A]0 [A] vs. t −k 1 ln[A]=−kt+ln[A]0 ln[A] vs. t −k 2 1[A]= kt+1[A]0 1[A] vs. t k The reactant concentration in a first-order reaction was 5.50×10−2 M after 25.0 s and 1.30×10−3 M after 100 s . What is the rate constant for this reaction? The reactant concentration in a second-order reaction was 0.250 M after 260 s and 6.60×10−2 M after 845 s . What is the rate constant for this reaction?
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 integrated rate laws for zero-, first-, and second-order reaction may be arranged such that they resemble the equation for a straight line, y=mx+b.
Order | Integrated Rate Law | Graph | Slope |
0 | [A]=−kt+[A]0 | [A] vs. t | −k |
1 | ln[A]=−kt+ln[A]0 | ln[A] vs. t | −k |
2 | 1[A]= kt+1[A]0 | 1[A] vs. t | k |
The reactant concentration in a first-order reaction was 5.50×10−2 M after 25.0 s and 1.30×10−3 M after 100 s . What is the rate constant for this reaction?
The reactant concentration in a second-order reaction was 0.250 M after 260 s and 6.60×10−2 M after 845 s . What is the rate constant for this reaction?
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