(a) Interpretation: Time taken to complete 75 % of a first-order reaction should be calculated. Concept introduction: A rate law expression defines the relationship between the rate of reaction and the concentration of reactants. Consider a reaction, a A + b B → Products The rate law for the above equation can be defined as, r = k [ A ] a [ B ] b As the reaction proceeds, the concentration of reactants decreases and the concentration of products increases. For the first-order reaction, the rate law expression is, k = 1 t ln ( [ A ] 0 [ A ] t ) For the first-order reaction, the expression for the half-life is, t 1/2 = 0 .693 k
(a) Interpretation: Time taken to complete 75 % of a first-order reaction should be calculated. Concept introduction: A rate law expression defines the relationship between the rate of reaction and the concentration of reactants. Consider a reaction, a A + b B → Products The rate law for the above equation can be defined as, r = k [ A ] a [ B ] b As the reaction proceeds, the concentration of reactants decreases and the concentration of products increases. For the first-order reaction, the rate law expression is, k = 1 t ln ( [ A ] 0 [ A ] t ) For the first-order reaction, the expression for the half-life is, t 1/2 = 0 .693 k
Solution Summary: The author explains how a rate law expression defines the relationship between the rate of reaction and the concentration of reactants.
Definition Definition Study of the speed of chemical reactions and other factors that affect the rate of reaction. It also extends toward the mechanism involved in the reaction.
Chapter 20, Problem 108SAE
Interpretation Introduction
(a)
Interpretation:
Time taken to complete 75% of a first-order reaction should be calculated.
Concept introduction:
A rate law expression defines the relationship between the rate of reaction and the concentration of reactants.
Consider a reaction,
aA+bB→Products
The rate law for the above equation can be defined as,
r=k[A]a[B]b
As the reaction proceeds, the concentration of reactants decreases and the concentration of products increases.
For the first-order reaction, the rate law expression is,
k=1tln([A]0[A]t)
For the first-order reaction, the expression for the half-life is,
t1/2=0.693k
Interpretation Introduction
(b)
Interpretation:
Time to complete 75% reaction for zero order reaction should be calculated.
Concept introduction:
A rate law expression defines the relationship between the rate of reaction and the concentration of reactants.
Consider a reaction,
aA+bB→Products
The rate law for the above equation can be defined as,
r=k[A]a[B]b
As the reaction proceeds, the concentration of reactants decreases and the concentration of products increases.
For the zero order reaction, the rate law expression is,
[A]=[A]0−kt
For the zero order reaction, the expression for the half-life is,
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