Chemistry: Atoms First V1
Chemistry: Atoms First V1
1st Edition
ISBN: 9781259383120
Author: Burdge
Publisher: McGraw Hill Custom
Question
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Chapter 19.6, Problem 19.8WE
Interpretation Introduction

Interpretation:

For the given reaction with given temperature and rate constant data the activation energy should be determined.

Concept introduction:

In order to establish the plausibility of a mechanism, one must compare the rate law of the rate determining step to the experimentally determined rate law.

Rate determining step: In a chemical reaction the rate determining step is the slowest step in which the rate of the reaction depends on the rate of that slowest step.

Rate law: It is generally the rate equation that consists of the reaction rate with the concentration or the pressures of the reactants and constant parameters.

Activation energy: It is defined as the minimum energy required by the reacting species in order to undergo chemical reaction.

Intermediate species: It is the species formed during the middle of the chemical reaction between the reactant and the desired product.

Arrhenius equation:

  • Arrhenius equation is a formula that represents the temperature dependence of reaction rates
  • The Arrhenius equation has to be represented as follows

k=AeEa/RTlnk=lnAeEa/RTlnk=(EaR)(1T)+lnA

  • Ea represents the activation energy and it’s unit is kJ/mol
  • R represents the universal gas constant and it has the value of 8.314 J/K.mol
  • T represents the absolute temperature
  • A represents the frequency factor or collision frequency
  • e represents the base of natural logarithm
  •  Arrhenius equation equation was proposed by Svante Arrhenius in 1889.

Expert Solution & Answer
Check Mark

Answer to Problem 19.8WE

The activation energy for the given reaction is 46kJ/mol.

Explanation of Solution

In order to find the activation energy we need to find the slope value of line which obtained from the graph plotted between lnK and 1/T.

First the following table should be generated for values lnK and 1/T values using the given set of values

The values for lnK are obtained as follows by using the value of given K.

k(M-1.s-1)lnk0.05212.950.1012.290.1841.690.3321.10

The values for 1/T are obtained as follows by using the given values T(K).

T(K)1/T(K-1)2883.47×1032983.36×1033083.25×1033183.14×103

The resulting table is as follows,

lnk1/T(K-1)2.953.47×1032.293.36×1031.693.25×1031.103.14×103

The graph for above table is drawn as follows,

Chemistry: Atoms First V1, Chapter 19.6, Problem 19.8WE

Now the slope for the line in the graph is calculated by using the two marked points in the graph.

slope = -1.4-(-2.5)3.2×10-3K-1-3.4×10-3K-1= -5.5×103K

Now, the activation energy is calculated as follows by using the expression slope = EaR

Therefore,

Ea = slope×R=(5.5×103K)(8.314J/K. mol)=4.6×104J/mol=4.6kJ/mol

Therefore, the activation energy is 4.6kJ/mol

Conclusion

The activation energy for the given reaction was determined using the given rate constant data.

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Chapter 19 Solutions

Chemistry: Atoms First V1

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