Unit 4 Chemical Kinetics
Chemical Kinetics helps us to understand how chemical reactions occur.
Chemistry, by its very nature, is concerned with change. Substances with well defined properties are converted by chemical reactions into other substances with different properties. For any chemical reaction, chemists try to find out
(a) the feasibility of a chemical reaction which can be predicted by thermodynamics ( as you know that a reaction with DG < 0, at constant temperature and pressure is feasible);
(b) extent to which a reaction will proceed can be determined from chemical equilibrium;
(c) speed of a reaction i.e. time taken by a reaction to reach equilibrium.
Along with feasibility and extent, it is equally important to know the rate and the factors controlling the rate of a chemical reaction for its complete understanding. For example, which parameters determine as to how rapidly food gets spoiled? How to design a rapidly setting material for dental filling? Or what controls the rate at which fuel burns in an auto engine? All these questions can be answered by the branch of chemistry, which deals with the study of reaction rates and their mechanisms, called chemical kinetics. The word kinetics is derived from the Greek word ‘kinesis’ meaning movement. Thermodynamics tells only about the feasibility of a reaction whereas chemical kinetics tells about the rate of a reaction. For example, thermodynamic data indicate that diamond shall convert to graphite but in reality the conversion rate is so slow that the change is not perceptible at all. Therefore, most people think that diamond is forever. Kinetic studies not only help us to determine the speed or rate of a chemical reaction but also describe the conditions by which the reaction rates can be altered. The factors such as concentration, temperature, pressure and catalyst affect the rate of a reaction. At the macroscopic level, we are interested in amounts reacted or formed and the rates of their consumption or formation. At the molecular level, the reaction mechanisms involving orientation and energy of molecules undergoing collisions, are discussed.
In this Unit, we shall be dealing with average and instantaneous rate of reaction and the factors affecting these. Some elementary ideas about the collision theory of reaction rates are also given. However, in order to understand all these, let us first learn about the reaction rate.
4.1 Rate of a Chemical Reaction
Some reactions such as ionic reactions occur very fast, for example, precipitation of silver chloride occurs instantaneously by mixing of aqueous solutions of silver nitrate and sodium chloride. On the other hand, some reactions are very slow, for example, rusting of iron in the presence of air and moisture. Also there are reactions like inversion of cane sugar and hydrolysis of starch, which proceed with a moderate speed. Can you think of more examples from each category?
You must be knowing that speed of an automobile is expressed in terms of change in the position or distance covered by it in a certain period of time. Similarly, the speed of a reaction or the rate of a reaction can be defined as the change in concentration of a reactant or product in unit time. To be more specific, it can be expressed in terms of:
(i) the rate of decrease in concentration of any one of the reactants, or
(ii) the rate of increase in concentration of any one of the products. Consider a hypothetical reaction, assuming that the volume of the system remains constant.
$ \mathrm{R} \rightarrow \mathrm{P} $ One mole of the reactant $R$ produces one mole of the product $P$. If $\left[R\right]_1$ and $\left[P\right]_1$ are the concentrations of $R$ and $P$ respectively at time $t_1$ and $[\mathrm{R}]_2$ and $[\mathrm{P}]_2$ are their concentrations at time $\mathrm{t_2}$ then,
$$ \begin{aligned} \Delta t & =t_{2}-t_1 \\ \Delta[\mathrm{R}] & =[\mathrm{R}]_2-[\mathrm{R}]_1 \\ \Delta[\mathrm{P}] & =[\mathrm{P}]_2-[\mathrm{P}]_1 \end{aligned} $$
The square brackets in the above expressions are used to express molar concentration.
Rate of disappearance of $\mathrm{R}$
$$ \begin{equation*} =\frac{\text { Decrease in concentration of } \mathrm{R}}{\text { Time taken }}=-\frac{\Delta[\mathrm{R}]}{\Delta t} \tag{4.1} \end{equation*} $$
Rate of appearance of $\mathrm{P}$
$$ \begin{equation*} =\frac{\text { Increase in concentration of } \mathrm{P}}{\text { Time taken }}=+\frac{\Delta[\mathrm{P}]}{\Delta t} \tag{4.2} \end{equation*} $$
Since, $\Delta[R]$ is a negative quantity (as concentration of reactants is decreasing), it is multiplied with -1 to make the rate of the reaction a positive quantity.
Equations (4.1) and (4.2) given above represent the average rate of a reaction, $r_{\mathrm{av}}$.
Average rate depends upon the change in concentration of reactants or products and the time taken for that change to occur (Fig. 4.1).
Fig. 4.1: Instantaneous and average rate of a reaction
Units of rate of a reaction
From equations (3.1) and (3.2), it is clear that units of rate are concentration time ${ }^{-1}$. For example, if concentration is in $\mathrm{mol} \mathrm{L}^{-1}$ and time is in seconds then the units will be $\mathrm{mol} \mathrm{L}^{-1} \mathrm{~s}^{-1}$. However, in gaseous reactions, when the concentration of gases is expressed in terms of their partial pressures, then the units of the rate equation will be atm $\mathrm{s}^{-1}$.
Example 4.1 From the concentrations of $\mathrm{C_4} \mathrm{H_9} \mathrm{Cl}$ (butyl chloride) at different times given below, calculate the average rate of the reaction:
$$ \mathrm{C_4} \mathrm{H_9} \mathrm{Cl}+\mathrm{H_2} \mathrm{O} \rightarrow \mathrm{C_4} \mathrm{H_9} \mathrm{OH}+\mathrm{HCl} $$
during different intervals of time.
$ \begin{array}{cccccccccc} t / \mathrm{s} & 0 & 50 & 100 & 150 & 200 & 300 & 400 & 700 & 800 \\ {\left[\mathrm{C} _4 \mathrm{H} _9 \mathrm{Cl}\right] / \mathrm{mol} \mathrm{L}^{-1}} & 0.100 & 0.0905 & 0.0820 & 0.0741 & 0.0671 & 0.0549 & 0.0439 & 0.0210 & 0.017 \end{array} $
Solution We can determine the difference in concentration over different intervals of time and thus determine the average rate by dividing $\Delta[R]$ by $\Delta t$ (Table 4.1).
Table 4.1: Average rates of hydrolysis of butyl chloride
$\left[\mathrm{C} _{4} \mathrm{H} _{9} \mathrm{CI}\right] _{t _{1}} /$ $\quad \mathrm{mol} \mathrm{L}^{-1}$ | $\left[\mathrm{C} _{4} \mathrm{H} _{9} \mathrm{CI}\right] _{t _{2}}$ $\mathrm{~mol} \mathrm{~L}^{-1}$ | $t _{1} / s$ | $t _{2} / \mathrm{s}$ | $\boldsymbol{r} _{\mathrm{av}} \times \mathbf{1 0 ^ { 4 }} / \mathbf{m o l} \mathbf{L}^{-\mathbf{1}} \mathbf{s}^{\mathbf{- 1}}$ $=-\left \{\left[\mathrm{C} _{4} \mathrm{H} _{9} \mathrm{Cl}\right] _{\mathrm{t} _{2}}-\left[\mathrm{C} _{4} \mathrm{H} _{9} \mathrm{Cl}\right] _{\mathrm{t} _{1}} /\left(\mathrm{t} _{2}-\mathrm{t} _{1}\right)\right\} \times 10^{4}$ |
---|---|---|---|---|
0.100 | 0.0905 | 0 | 50 | 1.90 |
0.0905 | 0.0820 | 50 | 100 | 1.70 |
0.0820 | 0.0741 | 100 | 150 | 1.58 |
0.0741 | 0.0671 | 150 | 200 | 1.40 |
0.0671 | 0.0549 | 200 | 300 | 1.22 |
0.0549 | 0.0439 | 300 | 400 | 1.10 |
0.0439 | 0.0335 | 400 | 500 | 1.04 |
0.0210 | 0.017 | 700 | 800 | 0.4 |
It can be seen (Table 4.1) that the average rate falls from $1.90 \times 0^{-4} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1}$ to $0.4 \times 10^{-4} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1}$. However, average rate cannot be used to predict the rate of a reaction at a particular instant as it would be constant for the time interval for which it is calculated. So, to express the rate at a particular moment of time we determine the instantaneous rate. It is obtained when we consider the average rate at the smallest time interval say $\mathrm{d} t$ (i.e. when $\Delta t$ approaches zero). Hence, mathematically for an infinitesimally small $\mathrm{d} t$ instantaneous rate is given by
$$ \begin{equation*} r_{\mathrm{av}}=\frac{-\Delta[\mathrm{R}]}{\Delta t}=\frac{\Delta[\mathrm{P}]}{\Delta t} \tag{4.3} \end{equation*} $$
$\Delta t \rightarrow 0$
$$ \text { and } \mathrm{r} _{\mathrm{inst}}=\frac{-\mathrm{d}[\mathrm{R}]}{\mathrm{d} t}=\frac{\mathrm{d}[\mathrm{P}]}{\mathrm{d} t} $$
Fig 4.2 Instantaneous rate of hydrolysis of butyl chloride $\left(\mathrm{C} _{4} \mathrm{H} _{9} \mathrm{Cl}\right)$
It can be determined graphically by drawing a tangent at time $t$ on either of the curves for concentration of $\mathrm{R}$ and $\mathrm{P}$ vs time $\mathrm{t}$ and calculating its slope (Fig. 4.1). So in problem 3.1, $r_{\text {inst }}$ at 600 s for example, can be calculated by plotting concentration of butyl chloride as a function of time. A tangent is drawn that touches the curve at $t=600 \mathrm{~s}$ (Fig. 4.2).
The slope of this tangent gives the instantaneous rate. $$ \begin{aligned} & \text { So, } r_{\text {inst }} \text { at } 600 \mathrm{~s}=-\left(\frac{0.0165-0.037}{(800-400) \mathrm{s}}\right) \mathrm{mol} \mathrm{L}^{-1}\\ & =5.12 \times 10^{-5} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1} \\ & \text { At } t=250 \mathrm{~s} \quad r_{\text {inst }}=1.22 \times 10^{-4} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1} \\ & \text { At } t=350 \mathrm{~s} \quad r_{\text {inst }}=1.0 \times 10^{-4} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1} \\ & \text { At } t=450 \mathrm{~s} \quad r_{\text {inst }}=6.4 \times 10^{-5} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1} \end{aligned} $$
Now consider a reaction $ \mathrm{Hg}(\mathrm{l})+\mathrm{Cl_2}(\mathrm{~g}) \rightarrow \mathrm{HgCl_2}(\mathrm{~s}) $
Where stoichiometric coefficients of the reactants and products are same, then rate of the reaction is given as
$ \text { Rate of reaction }=-\frac{\Delta[\mathrm{Hg}]}{\Delta t}=-\frac{\Delta\left[\mathrm{Cl_2}\right]}{\Delta t}=\frac{\Delta\left[\mathrm{HgCl_2}\right]}{\Delta t} $
i.e., rate of disappearance of any of the reactants is same as the rate of appearance of the products. But in the following reaction, two moles of $\mathrm{HI}$ decompose to produce one mole each of $\mathrm{H_2}$ and $\mathrm{I_2}$,
$$ 2 \mathrm{HI}(\mathrm{g}) \rightarrow \mathrm{H_2}(\mathrm{~g})+\mathrm{I_2}(\mathrm{~g}) $$
For expressing the rate of such a reaction where stoichiometric coefficients of reactants or products are not equal to one, rate of disappearance of any of the reactants or the rate of appearance of products is divided by their respective stoichiometric coefficients. Since rate of consumption of $\mathrm{HI}$ is twice the rate of formation of $\mathrm{H_2}$ or $\mathrm{I_2}$, to make them equal, the term $\Delta[\mathrm{HI}]$ is divided by 2 . The rate of this reaction is given by
Rate of reaction $=-\frac{1}{2} \frac{\Delta[\mathrm{HI}]}{\Delta t}=\frac{\Delta\left[\mathrm{H_2}\right]}{\Delta t}=\frac{\Delta\left[\mathrm{I_2}\right]}{\Delta t}$ Similarly, for the reaction $$ \begin{aligned} & 5 \mathrm{Br}^{-}(\mathrm{aq})+\mathrm{BrO_3}^{-}(\mathrm{aq})+6 \mathrm{H}^{+}(\mathrm{aq}) \rightarrow 3 \mathrm{Br_2}(\mathrm{aq})+3 \mathrm{H_2} \mathrm{O}(\mathrm{l}) \\ & \text { Rate }=-\frac{1}{5} \frac{\Delta\left[\mathrm{Br}^{-}\right]}{\Delta t}=-\frac{\Delta \mathrm{BrO_3}^{-}}{\Delta t}=-\frac{1}{6} \frac{\Delta\left[\mathrm{H}^{+}\right]}{\Delta t}=\frac{1}{3} \frac{\Delta\left[\mathrm{Br_2}\right]}{\Delta t}=\frac{1}{3} \frac{\Delta\left[\mathrm{H_2} \mathrm{O}\right]}{\Delta t} \end{aligned} $$
For a gaseous reaction at constant temperature, concentration is directly proportional to the partial pressure of a species and hence, rate can also be expressed as rate of change in partial pressure of the reactant or the product.
Example 4.2 The decomposition of $\mathrm{N_2} \mathrm{O_5}$ in $\mathrm{CCl_4}$ at $318 \mathrm{~K}$ has been studied by monitoring the concentration of $\mathrm{N_2} \mathrm{O_5}$ in the solution. Initially the concentration of $\mathrm{N_2} \mathrm{O_5}$ is $2.33 \mathrm{~mol} \mathrm{~L}^{-1}$ and after 184 minutes, it is reduced to $2.08 \mathrm{~mol} \mathrm{~L}^{-1}$. The reaction takes place according to the equation
$$ 2 \mathrm{~N_2} \mathrm{O_5}(\mathrm{~g}) \rightarrow 4 \mathrm{NO_2}(\mathrm{~g})+\mathrm{O_2}(\mathrm{~g}) $$
Calculate the average rate of this reaction in terms of hours, minutes and seconds. What is the rate of production of $\mathrm{NO_2}$ during this period?
Solution Average Rate $=\frac{1}{2}-\frac{\Delta\left[\mathrm{N_2} \mathrm{O_5}\right]}{\Delta t}=-\frac{1}{2} \frac{(2.08-2.33) \mathrm{molL}^{-1}}{184 \mathrm{~min}}$
$=6.79 \times 10^{-4} \mathrm{~mol} \mathrm{~L}^{-1} / \mathrm{min}=\left(6.79 \times 10^{-4} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~min}^{-1}\right) \times(60 \mathrm{~min} / \mathrm{lh})$
$=4.07 \times 10^{-2} \mathrm{~mol} \mathrm{~L}^{-1} / \mathrm{h}$
$=6.79 \times 10^{-4} \mathrm{~mol} \mathrm{~L}^{-1} \times 1 \mathrm{~min} / 60 \mathrm{~s}$
$=1.13 \times 10^{-5} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1}$
It may be remembered that
$ \begin{aligned} & \text {Rate}=\frac{1}{4} \frac{\Delta\left[\mathrm{NO_2}\right]}{\Delta t} \\ & \frac{\Delta\left[\mathrm{NO_2}\right]}{\Delta t}=6.79 \times 10^{-4} \times 4 \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~min}^{-1}=2.72 \times 10^{-3} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~min}^{-1} \end{aligned} $
Intext Questions
4.1 For the reaction $\mathrm{R} \rightarrow \mathrm{P}$, the concentration of a reactant changes from $0.03 \mathrm{M}$ to $0.02 \mathrm{M}$ in 25 minutes. Calculate the average rate of reaction using units of time both in minutes and seconds.
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Answer
$ \text{Average rate of reaction}=-\frac{\Delta[\mathrm{R}]}{\Delta t} $
$=-\frac{[\mathrm{R}]_2- [\mathrm{R}]_1}{t_2-t_1}$
$=-\frac{0.02-0.03}{25} \mathrm{M} \mathrm{~min}^{-1}$
$=-\frac{-0.01}{25} \mathrm{M} \mathrm{~min}^{-1}$
$=4 \times 10^{-4} \mathrm{M} \mathrm{~min}^{-1}$
$=\frac{4 \times 10^{-4}}{60} \mathrm{M} \mathrm{s}^{-1}$
$=6.67 \times 10^{-6} \mathrm{M} \mathrm{s}^{-1}$
4.2 In a reaction, $2 A \rightarrow$ Products, the concentration of A decreases from 0.5 $\mathrm{mol} \mathrm{L}^{-1}$ to $0.4 \mathrm{~mol} \mathrm{~L}^{-1}$ in 10 minutes. Calculate the rate during this interval?
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Answer
Average rate $=-\frac{1}{2} \frac{\Delta[\mathrm{A}]}{\Delta t}$
$=-\frac{1}{2} \frac{[\mathrm{A}]_2-[\mathrm{A}]_1}{t_2-t_1}$
$=-\frac{1}{2} \frac{0.4-0.5}{10}$
$=-\frac{1}{2} \frac{-0.1}{10}$
$=0.005 \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~min}^{-1}$
$=5 \times 10^{-3} \mathrm{M} \mathrm{min}^{-1}$
4.2 Factors Influencing Rate of a Reaction
Rate of reaction depends upon the experimental conditions such as concentration of reactants (pressure in case of gases), temperature and catalyst.
4.2.1 Dependence of Rate on Concentration
The rate of a chemical reaction at a given temperature may depend on the concentration of one or more reactants and products. The representation of rate of reaction in terms of concentration of the reactants is known as rate law. It is also called as rate equation or rate expression.
4.2.2 Rate Expression and Rate Constant
The results in Table 4.1 clearly show that rate of a reaction decreases with the passage of time as the concentration of reactants decrease. Conversely, rates generally increase when reactant concentrations increase. So, rate of a reaction depends upon the concentration of reactants.
Consider a general reaction:
$$ \mathrm{aA}+\mathrm{bB} \rightarrow \mathrm{cC}+\mathrm{dD} $$
where a, b, c and d are the stoichiometric coefficients of reactants and products.
The rate expression for this reaction is
$$ \begin{equation*} \text { Rate } \propto[\mathrm{A}]^{\mathrm{x}}[\mathrm{B}]^{\mathrm{y}} \tag{4.4} \end{equation*} $$
where exponents $\mathrm{x}$ and $\mathrm{y}$ may or may not be equal to the stoichiometric coefficients ( $\mathrm{a}$ and $\mathrm{b}$ ) of the reactants. Above equation can also be written as
$$ \begin{align*} & \text { Rate }=k[\mathrm{~A}]^{\mathrm{x}} \quad[\mathrm{B}]^{\mathrm{y}} \tag{4.4a}\\ & -\frac{\mathrm{d}[\mathrm{R}]}{\mathrm{d} t}=k[\mathrm{~A}]^{\mathrm{x}}[\mathrm{B}]^{\mathrm{y}} \tag{4.4b} \end{align*} $$
This form of equation (4.4 b) is known as differential rate equation, where k is a proportionality constant called rate constant. The equation like (4.4), which relates the rate of a reaction to concentration of reactants is called rate law or rate expression. Thus, rate law is the expression in which reaction rate is given in terms of molar concentration of reactants with each term raised to some power, which may or may not be same as the stoichiometric coefficient of the reacting species in a balanced chemical equation.
For example:
$$ 2 \mathrm{NO}(\mathrm{g})+\mathrm{O_2}(\mathrm{~g}) \rightarrow 2 \mathrm{NO_2}(\mathrm{~g}) $$
We can measure the rate of this reaction as a function of initial concentrations either by keeping the concentration of one of the reactants constant and changing the concentration of the other reactant or by changing the concentration of both the reactants. The following results are obtained (Table 4.2).
Table 4.2: Initial rate of formation of $\mathrm{NO} _{2}$
Experiment | Initial $[\mathrm{NO}] /$ mol $\mathbf{L}^{-1}$ | Initial $\left[\mathrm{O}_2\right] / \mathrm{mol} \mathbf{L}^{-1}$ | Initial rate of formation of $\mathrm{NO}_2 / \mathrm{mol} \mathrm{L}^{-1} \mathrm{~s}^{-1}$ |
---|---|---|---|
1. | 0.30 | 0.30 | 0.096 |
2. | 0.60 | 0.30 | 0.384 |
3. | 0.30 | 0.60 | 0.192 |
4. | 0.60 | 0.60 | 0.768 |
It is obvious, after looking at the results, that when the concentration of $\mathrm{NO}$ is doubled and that of $\mathrm{O_2}$ is kept constant then the initial rate increases by a factor of four from 0.096 to $0.384 \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1}$. This indicates that the rate depends upon the square of the concentration of NO. When concentration of NO is kept constant and concentration of $\mathrm{O_2}$ is doubled the rate also gets doubled indicating that rate depends on concentration of $\mathrm{O_2}$ to the first power. Hence, the rate equation for this reaction will be
$$ \text { Rate }=k\left[\mathrm{NO}^{2}\left[\mathrm{O_2}\right]\right]. $$
The differential form of this rate expression is given as
$$ -\frac{\mathrm{d}[\mathrm{R}]}{\mathrm{d} t}=k[\mathrm{NO}]^{2}\left[\mathrm{O_2}\right] $$
Now, we observe that for this reaction in the rate equation derived from the experimental data, the exponents of the concentration terms are the same as their stoichiometric coefficients in the balanced chemical equation.
Some other examples are given below: Reaction Experimental rate expression
Reaction
1. $\mathrm{CHCl_3}+\mathrm{Cl_2} \rightarrow \mathrm{CCl_4}+\mathrm{HCl}$
Experimental rate expression
2. $\mathrm{CH_3} \mathrm{COOC_2} \mathrm{H_5}+\mathrm{H_2} \mathrm{O} \rightarrow \mathrm{CH_3} \mathrm{COOH}+\mathrm{C_2} \mathrm{H_5} \mathrm{OH}$ Rate $=k\left[\mathrm{CH_3} \mathrm{COOC_2} \mathrm{H_5}\right]^{1}\left[\mathrm{H_2} \mathrm{O}\right]^{0}$
In these reactions, the exponents of the concentration terms are not the same as their stoichiometric coefficients. Thus, we can say that:
Rate law for any reaction cannot be predicted by merely looking at the balanced chemical equation, i.e., theoretically but must be determined experimentally.
4.2.3 Order of a Reaction
In the rate equation (4.4) Reaction
$$
\text { Rate } =k[A]^{\mathrm{x}}[\mathrm{B}]^{\mathrm{y}}
$$
$\mathrm{x}$ and $\mathrm{y}$ indicate how sensitive the rate is to the change in concentration of A and B. Sum of these exponents, i.e., $x+y$ in (4.4) gives the overall order of a reaction whereas $\mathrm{x}$ and $\mathrm{y}$ represent the order with respect to the reactants $\mathrm{A}$ and $\mathrm{B}$ respectively.
Hence, the sum of powers of the concentration of the reactants in the rate law expression is called the order of that chemical reaction.
Order of a reaction can be $0,1,2,3$ and even a fraction. A zero order reaction means that the rate of reaction is independent of the concentration of reactants.
Example 4.3 Calculate the overall order of a reaction which has the rate expression
(a) Rate $=k[\mathrm{~A}]^{1 / 2}[\mathrm{~B}]^{3 / 2}$
(b) Rate $=k[\mathrm{~A}]^{3 / 2}[\mathrm{~B}]^{-1}$
Solution (a) Rate $=k[\mathrm{~A}]^{\mathrm{x}}[\mathrm{B}]^{\mathrm{y}}$
order $=\mathrm{x}+\mathrm{y}$
So order $=1 / 2+3 / 2=2$, i.e., second order
(b) order $=3 / 2+(-1)=1 / 2$, i.e., half order.
A balanced chemical equation never gives us a true picture of how a reaction takes place since rarely a reaction gets completed in one step. The reactions taking place in one step are called elementary reactions. When a sequence of elementary reactions (called mechanism) gives us the products, the reactions are called complex reactions. These may be consecutive reactions (e.g., oxidation of ethane to $\mathrm{CO_2}$ and $\mathrm{H_2} \mathrm{O}$ passes through a series of intermediate steps in which alcohol, aldehyde and acid are formed), reverse reactions and side reactions (e.g., nitration of phenol yields $o$-nitrophenol and $p$-nitrophenol).
Units of rate constant For a general reaction $$ \begin{aligned} & \mathrm{aA}+\mathrm{bB} \rightarrow \mathrm{cC}+\mathrm{dD} \\ & \text { Rate }=k[\mathrm{~A}]^{\mathrm{x}}[\mathrm{B}]^{\mathrm{y}} \end{aligned} $$
Where $\mathrm{x}+\mathrm{y}=\mathrm{n}=$ order of the reaction
$$ \begin{aligned} k & =\frac{\text { Rate }}{[\mathrm{A}]^{\mathrm{x}}[\mathrm{B}]^{y}} \\ & \left.=\frac{\text { concentration }}{\text { time }} \times \frac{1}{(\text { concentration })^{\mathrm{n}}} \quad \text { where }[\mathrm{A}]=[\mathrm{B}]\right. \end{aligned} $$
Taking SI units of concentration, mol L–1 and time, s, the units of k for different reaction order are listed in Table 4.3
Table 4.3: Units of rate constant
Reaction | Order | Units of rate constant |
---|---|---|
Zero order reaction | 0 | $\frac{\mathrm{molL}^{-1}}{\mathrm{~s}} \times \frac{1}{\left(\mathrm{~mol} \mathrm{~L}^{-1}\right)^0}=\mathrm{molL}^{-1} \mathrm{~s}^{-1}$ |
First order reaction | 1 | $\frac{\mathrm{molL}^{-1}}{\mathrm{~s}} \times \frac{1}{\left(\mathrm{molL}^{-1}\right)^1}=\mathrm{s}^{-1}$ |
Second order reacti | 2 | $\frac{\mathrm{molL}^{-1}}{\mathrm{~s}} \times \frac{1}{\left(\mathrm{molL}^{-1}\right)^2}=\mathrm{mol}^{-1} \mathrm{Ls}^{-1}$ |
Example 3.4 Identify the reaction order from each of the following rate constants.
(i) $k=2.3 \times 10^{-5} \mathrm{~L} \mathrm{~mol}^{-1} \mathrm{~s}^{-1}$
(ii) $k=3 \times 10^{-4} \mathrm{~s}^{-1}$
Solution
(i) The unit of second order rate constant is $\mathrm{L} \mathrm{mol}^{-1} \mathrm{~s}^{-1}$, therefore $k=2.3 \times 10^{-5} \mathrm{~L} \mathrm{~mol}^{-1} \mathrm{~s}^{-1}$ represents a second order reaction.
(ii) The unit of a first order rate constant is $\mathrm{s}^{-1}$ therefore $k=3 \times 10^{-4} \mathrm{~s}^{-1}$ represents a first order reaction.
4.2.4 Molecularity of a Reaction
Another property of a reaction called molecularity helps in understanding its mechanism. The number of reacting species (atoms, ions or molecules) taking part in an elementary reaction, which must collide simultaneously in order to bring about a chemical reaction is called molecularity of a reaction. The reaction can be unimolecular when one reacting species is involved, for example, decomposition of ammonium nitrite.
$ \mathrm{NH_4} \mathrm{NO_2} \rightarrow \mathrm{N_2}+2 \mathrm{H_2} \mathrm{O} $ Bimolecular reactions involve simultaneous collision between two species, for example, dissociation of hydrogen iodide.
$ 2 \mathrm{HI} \rightarrow \mathrm{H_2}+\mathrm{I_2} $ Trimolecular or termolecular reactions involve simultaneous collision between three reacting species, for example, $2 \mathrm{NO}+\mathrm{O_2} \rightarrow 2 \mathrm{NO_2}$
The probability that more than three molecules can collide and react simultaneously is very small. Hence, reactions with the molecularity three are very rare and slow to proceed.
It is, therefore, evident that complex reactions involving more than three molecules in the stoichiometric equation must take place in more than one step.
$$ \mathrm{KClO_3}+6 \mathrm{FeSO_4}+3 \mathrm{H_2} \mathrm{SO_4} \rightarrow \mathrm{KCl}+3 \mathrm{Fe_2}\left(\mathrm{SO_4}\right)_{3}+3 \mathrm{H_2} \mathrm{O} $$
This reaction which apparently seems to be of tenth order is actually a second order reaction. This shows that this reaction takes place in several steps. Which step controls the rate of the overall reaction? The question can be answered if we go through the mechanism of reaction, for example, chances to win the relay race competition by a team depend upon the slowest person in the team. Similarly, the overall rate of the reaction is controlled by the slowest step in a reaction called the rate determining step. Consider the decomposition of hydrogen peroxide which is catalysed by iodide ion in an alkaline medium.
$$ 2 \mathrm{H_2} \mathrm{O_2} \xrightarrow[\text { Alkaline medium }]{\mathrm{I}^{-}} 2 \mathrm{H_2} \mathrm{O}+\mathrm{O_2} $$
The rate equation for this reaction is found to be
$$ \text { Rate }=\frac{-\mathrm{d}\left[\mathrm{H_2} \mathrm{O_2}\right]}{\mathrm{d} t}=k\left[\mathrm{H_2} \mathrm{O_2}\right]\left[\mathrm{I}^{-}\right] $$
This reaction is first order with respect to both $\mathrm{H_2} \mathrm{O_2}$ and $\mathrm{I}^{-}$. Evidences suggest that this reaction takes place in two steps
(1) $\mathrm{H_2} \mathrm{O_2}+\mathrm{I}^{-} \rightarrow \mathrm{H_2} \mathrm{O}+\mathrm{IO}^{-}$
(2) $\mathrm{H_2} \mathrm{O_2}+\mathrm{IO}^{-} \rightarrow \mathrm{H_2} \mathrm{O}+\mathrm{I}^{-}+\mathrm{O_2}$
Both the steps are bimolecular elementary reactions. Species IO- is called as an intermediate since it is formed during the course of the reaction but not in the overall balanced equation. The first step, being slow, is the rate determining step. Thus, the rate of formation of intermediate will determine the rate of this reaction.
Thus, from the discussion, till now, we conclude the following:
(i) Order of a reaction is an experimental quantity. It can be zero and even a fraction but molecularity cannot be zero or a non integer.
(ii) Order is applicable to elementary as well as complex reactions whereas molecularity is applicable only for elementary reactions. For complex reaction molecularity has no meaning.
(iii) For complex reaction, order is given by the slowest step and molecularity of the slowest step is same as the order of the overall reaction.
Intext Questions
4.3 For a reaction, $\mathrm{A}+\mathrm{B} \rightarrow$ Product; the rate law is given by, $r=k[\mathrm{~A}]^{1 / 2}[\mathrm{~B}]^{2}$. What is the order of the reaction?
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Answer
The order of the reaction $=\frac{1}{2}+2$
$=2 \frac{1}{2}$
$=2.5$
4.4 The conversion of molecules $X$ to $Y$ follows second order kinetics. If concentration of $\mathrm{X}$ is increased to three times how will it affect the rate of formation of $\mathrm{Y}$ ?
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Answer
The reaction $X \rightarrow Y$ follows second order kinetics.
Therefore, the rate equation for this reaction will be:
Rate $=k[\mathrm{X}]^{2}(1)$
Let $[X]=a$ mol $L^{-1}$, then equation (1) can be written as:
Rate $_{1}=k .(a)^{2}$
$=k a^{2}$
If the concentration of $X$ is increased to three times, then $[X]=3 a \mathrm{~mol} \mathrm{~L}^{-1}$
Now, the rate equation will be:
Rate $=k(3 a)^{2}$
$=9\left(k a^{2}\right)$
Hence, the rate of formation will increase by 9 times.
4.3 Integrated Rate Equations
We have already noted that the concentration dependence of rate is called differential rate equation. It is not always convenient to determine the instantaneous rate, as it is measured by determination of slope of the tangent at point ‘t’ in concentration vs time plot (Fig. 4.1). This makes it difficult to determine the rate law and hence the order of the reaction. In order to avoid this difficulty, we can integrate the differential rate equation to give a relation between directly measured experimental data, i.e., concentrations at different times and rate constant.
The integrated rate equations are different for the reactions of different reaction orders. We shall determine these equations only for zero and first order chemical reactions.
4.3.1 Zero Order Reactions
Zero order reaction means that the rate of the reaction is proportional to zero power of the concentration of reactants. Consider the reaction, $ \mathrm{R} \rightarrow \mathrm{P} $ $$ \begin{aligned} \text { Rate }=-\frac{\mathrm{d}[\mathrm{R}]}{\mathrm{d} t}=k[\mathrm{R}]^{0} \end{aligned} $$
As any quantity raised to power zero is unity
$$ \begin{aligned} & \text { Rate }=-\frac{\mathrm{d}[\mathrm{R}]}{\mathrm{d} t}=k \times 1 \ & \mathrm{~d}[\mathrm{R}]=-k \mathrm{~d} t \end{aligned} $$
Integrating both sides
$$ \begin{equation*} [\mathrm{R}]=-k t+\mathrm{I} \tag{4.5} \end{equation*} $$
where, I is the constant of integration.
At $t=0$, the concentration of the reactant $R=R_0$, where $R_0$ is initial concentration of the reactant.
Substituting in equation (4.5)
$$ \begin{aligned} & {[\mathrm{R}]_0=-k \times 0+\mathrm{I}} \\ & {[\mathrm{R}]_0=\mathrm{I}} \end{aligned} $$
Substituting the value of I in the equation (4.5)
$$ \begin{equation*} \mathrm{R}=-k t+\mathrm{R}_0 \tag{4.6} \end{equation*} $$
Comparing (4.6) with equation of a straight line, $y=m x+c$, if we plot $[R]$ against $t$, we get a straight line (Fig. 4.3) with slope $=-k$ and intercept equal to $[\mathrm{R}]_{0}$.
Further simplifying equation (4.6), we get the rate constant, $k$ as
$$ \begin{equation*} k=\frac{[\mathrm{R}]_{0}-[\mathrm{R}]}{t} \tag{4.7} \end{equation*} $$
Fig. 4.3: Variation in the concentration vs time plot for a zero order reaction
Zero order reactions are relatively uncommon but they occur under special conditions. Some enzyme catalysed reactions and reactions which occur on metal surfaces are a few examples of zero order reactions. The decomposition of gaseous ammonia on a hot platinum surface is a zero order reaction at high pressure.
$$ 2 \mathrm{NH_3}(\mathrm{~g}) \underset{\text { Pt catalyst }}{1130 \mathrm{~K}} \rightarrow \mathrm{N_2}(\mathrm{~g})+3 \mathrm{H_2}(\mathrm{~g}) $$
$$ \text { Rate }=k\left[\mathrm{NH_3}\right]^{0}=k $$
In this reaction, platinum metal acts as a catalyst. At high pressure, the metal surface gets saturated with gas molecules. So, a further change in reaction conditions is unable to alter the amount of ammonia on the surface of the catalyst making rate of the reaction independent of its concentration. The thermal decomposition of HI on gold surface is another example of zero order reaction.
4.3.2 First Order Reactions
In this class of reactions, the rate of the reaction is proportional to the first power of the concentration of the reactant R. For example,
$$ \begin{aligned} & \mathrm{R} \rightarrow \mathrm{P} \\ & \text { Rate }=-\frac{\mathrm{d}[\mathrm{R}]}{\mathrm{d} t}=k[\mathrm{R}] \\ & \text { or } \frac{\mathrm{d}[\mathrm{R}]}{[\mathrm{R}]}=-k \mathrm{~d} t \end{aligned} $$
Integrating this equation, we get $$ \begin{equation*} \ln [R]=-k t+I \tag{4.8} \end{equation*} $$
Again, I is the constant of integration and its value can be determined easily.
When $t=0, R=[R]_0$, where $[R]_0$ is the initial concentration of the reactant.
Therefore, equation (3.8) can be written as
$$ \begin{aligned} & \ln [\mathrm{R}]_0=-k \times 0+\mathrm{I} \\ & \ln [\mathrm{R}]_0=\mathrm{I} \end{aligned} $$
Substituting the value of I in equation (3.8)
$$ \begin{equation*} \ln [R]=-k t+\ln [R]_0 \tag{4.9} \end{equation*} $$
Rearranging this equation
$$ \begin{align*} & \ln \frac{[\mathrm{R}]}{[\mathrm{R}]_0}=-k t \\ & \text { or } k=\frac{1}{t} \ln \frac{[\mathrm{R}]_0}{[\mathrm{R}]} \tag{4.10} \end{align*} $$
At time $t_1$ from equation (3.8)
$$ \begin{equation*} \ln [R] _{1}=-k t _{1}+\ln [R] _{0} \tag{3.11} \end{equation*} $$
At time $t_2$
$$ \begin{equation*} \ln [R]_2=-k t_2+\ln [R]_0 \tag{4.12} \end{equation*} $$
where, $[R]_1$ and $[R]_2$ are the concentrations of the reactants at time $t_1$ and $t_2$ respectively.
Subtracting (4.12) from (4.11)
$$ \begin{align*} & \ln [\mathrm{R}]_1-\ln [\mathrm{R}]_2=-k t_1-\left(-k t_2\right) \end{align*} $$
$$ \begin{align*} & \ln \frac{[\mathrm{R}]_1}{[\mathrm{R}]_2}=k\left(t_2-t_1\right) \\ & k=\frac{1}{\left(t_2-t_1\right)} \ln \frac{[\mathrm{R}]_1}{[\mathrm{R}]_2} \tag{4.13} \end{align*} $$
Equation (3.9) can also be written as
$$ \ln \frac{[\mathrm{R}]}{[\mathrm{R}]_{0}}=-k t $$
Taking antilog of both sides
$$ \begin{equation*} [\mathrm{R}]=[\mathrm{R}]_{0} \mathrm{e}^{-k t} \tag{4.14} \end{equation*} $$
Comparing equation (3.9) with $\mathrm{y}=\mathrm{mx}+\mathrm{c}$, if we plot $\ln [R]$ against $t$ (Fig. 4.4) we get a straight line with slope $=-k$ and intercept equal to $\ln [\mathrm{R}]_{0}$
The first order rate equation (3.10) can also be written in the form
$$ \begin{align*} & k=\frac{2.303}{t} \log \frac{[\mathrm{R}]_0}{[\mathrm{R}]} \tag{4.15}\\ & \text { or } * \log \frac{[\mathrm{R}]_0}{[\mathrm{R}]}=\frac{k t}{2.303} \end{align*} $$
If we plot a graph between $\log [R]_{0} /[R]$ vs $t$, (Fig. 4.5), the slope $=k / 2.303$
Hydrogenation of ethene is an example of first order reaction.
$$ \mathrm{C_2} \mathrm{H_4}(\mathrm{~g})+\mathrm{H_2}(\mathrm{~g}) \rightarrow \mathrm{C_2} \mathrm{H_6}(\mathrm{~g}) $$
Rate $=k\left[\mathrm{C_2} \mathrm{H_4}\right]$
All natural and artificial radioactive decay of unstable nuclei take place by first order kinetics.
Fig. 4.4: A plot between ln[R] and t for a first order reaction
Fig. 4.5: Plot of log [R]0 /[R] vs time for a first order reaction
$$ \begin{aligned} & { } _{88}^{226} \mathrm{Ra} \rightarrow{ } _{2}^{4} \mathrm{He}+{ } _{86}^{222} \mathrm{Rn} \\ & \text { Rate }=k \text { [Ra] } \\ & \text{Decomposition of } \mathrm{N} _{2} \mathrm{O} _{5} \text { and } \mathrm{N} _{2} \mathrm{O} \text { are some more examples of first order reactions. } \end{aligned} $$
Let us consider a typical first order gas phase reaction
$$ \mathrm{A}(\mathrm{g}) \rightarrow \mathrm{B}(\mathrm{g})+\mathrm{C}(\mathrm{g}) $$
Example 3.6 The initial concentration of $\mathrm{N}_2 \mathrm{O}_5$ in the following first order reaction $\mathrm{N}_2 \mathrm{O}_5(\mathrm{~g}) \rightarrow 2 \mathrm{NO}_2(\mathrm{~g})+1 / 2 \mathrm{O}_2(\mathrm{~g})$ was $1.24 \times 10^{-2} \mathrm{~mol} \mathrm{~L}^{-1}$ at $318 \mathrm{~K}$. The concentration of $\mathrm{N}_2 \mathrm{O}_5$ after 60 minutes was $0.20 \times 10^{-2} \mathrm{~mol} \mathrm{~L}^{-1}$. Calculate the rate constant of the reaction at $318 \mathrm{~K}$.
Solution
For a first order reaction
$$ \log \frac{[\mathrm{R}] _{1}}{[\mathrm{R}] _{2}}=\frac{k\left(\mathrm{t} _{2}-\mathrm{t} _{1}\right)}{2.303} $$
or $\quad k=\frac{2.303}{\mathrm{t} _{2}-\mathrm{t} _{1}} \log \frac{[\mathrm{R}] _{1}}{[\mathrm{R}] _{2}}$
or $\quad k=\frac{2.303}{(60 \mathrm{~min}-0 \mathrm{~min})} \log \frac{1.24 \times 10^{-2} \mathrm{~mol} \mathrm{~L}^{-1}}{0.20 \times 10^{-2} \mathrm{~mol} \mathrm{~L}^{-1}}$
$$ =\frac{2.303}{60} \log 6.2 \mathrm{~min}^{-1} $$
$$ =\frac{2.303}{60} \times 0.7924 \mathrm{~min}^{-1} $$
or
$$ k=0.0304 \mathrm{~min}^{-1} $$
Let $p_{\mathrm{i}}$ be the initial pressure of $\mathrm{A}$ and $p_{\mathrm{t}}$ the total pressure at time ’ $t$ ‘. Integrated rate equation for such a reaction can be derived as
Total pressure $p_{\mathrm{t}}=p_{\mathrm{A}}+p_{\mathrm{B}}+p_{\mathrm{C}}$ (pressure units) $p_{\mathrm{A}}, p_{\mathrm{B}}$ and $p_{\mathrm{C}}$ are the partial pressures of $\mathrm{A}, \mathrm{B}$ and $\mathrm{C}$, respectively.
If $\mathrm{x}$ atm be the decrease in pressure of $\mathrm{A}$ at time $t$ and one mole each of $\mathrm{B}$ and $\mathrm{C}$ is being formed, the increase in pressure of $\mathrm{B}$ and $\mathrm{C}$ will also be $\mathrm{x}$ atm each.
$\mathrm{A}(\mathrm{g}) \rightarrow$ | B(g) + | $\mathrm{C}(\mathrm{g})$ | |
---|---|---|---|
At $t=0$ | $p_{\mathrm{i}}$ atm | $0 \mathrm{~atm}$ | $0 \mathrm{~atm}$ |
At time | $\left(p_{\mathrm{i}}-\mathrm{x}\right) \mathrm{atm}$ | $\mathrm{x}$ atm | $\mathrm{x} \mathrm{atm}$ |
where, $p_{\mathrm{i}}$ is the initial pressure at time $t=0$.
$$ \begin{aligned} & p_{\mathrm{t}}=\left(p_{\mathrm{i}}-\mathrm{x}\right)+\mathrm{x}+\mathrm{x}=p_{\mathrm{i}}+\mathrm{x} \ & \mathrm{x}=\left(p_{\mathrm{t}}-p_{\mathrm{i}}\right) \end{aligned} $$
$$ \text { where, } \begin{align*} p_{\mathrm{A}} & =p_{\mathrm{i}}-\mathrm{x}=p_{\mathrm{i}}-\left(p_{\mathrm{t}}-p_{\mathrm{i}}\right) \\ & =2 p_{\mathrm{i}}-p_{\mathrm{t}} \\ k & =\left(\frac{2.303}{t}\right)\left(\log \frac{p_{\mathrm{i}}}{p_{\mathrm{A}}}\right) \tag{4.16}\\ = & \frac{2.303}{t} \log \frac{p_{\mathrm{i}}}{\left(2 p_{\mathrm{i}}-p_{\mathrm{t}}\right)} \end{align*} $$
Example 3.6 The following data were obtained during the first order thermal decomposition of $\mathrm{N_2} \mathrm{O_5}(\mathrm{~g})$ at constant volume:
$$ 2 \mathrm{~N} _{2} \mathrm{O} _{5}(\mathrm{~g}) \rightarrow 2 \mathrm{~N} _{2} \mathrm{O} _{4}(\mathrm{~g})+\mathrm{O} _{2}(\mathrm{~g}) $$
S.No. | Time/s | Total Pressure/(atm) |
---|---|---|
1. | 0 | 0.5 |
2. | 100 | 0.512 |
Calculate the rate constant.
Solution Let the pressure of $\mathrm{N}_2 \mathrm{O}_5(\mathrm{~g})$ decrease by $2 \mathrm{x}$ atm. As two moles of $\mathrm{N}_2 \mathrm{O}_5$ decompose to give two moles of $\mathrm{N}_2 \mathrm{O}_4(\mathrm{~g})$ and one mole of $\mathrm{O}_2$ (g), the pressure of $\mathrm{N}_2 \mathrm{O}_4(\mathrm{~g})$ increases by $2 \mathrm{x}$ atm and that of $\mathrm{O}_2(\mathrm{~g})$ increases by $\mathrm{x}$ atm. $$ 2 \mathrm{~N} _{2} \mathrm{O} _{5}(\mathrm{~g}) \rightarrow 2 \mathrm{~N} _{2} \mathrm{O} _{4}(\mathrm{~g})+\mathrm{O} _{2}(\mathrm{~g}) $$
Start $t=0 \quad 0.5 \mathrm{~atm} \quad 0 \mathrm{~atm} \quad 0 \mathrm{~atm}$
At time $t$ $(0.5-2 x) \mathrm{atm} 2 x \mathrm{~atm} x \mathrm{~atm}$
$p _{t}=p _{\mathrm{N} _{2} \mathrm{O} _{5}}+p _{\mathrm{N} _{2} \mathrm{O} _{4}}+p _{\mathrm{O} _{2}}=(0.5-2 x)+2 x+x=0.5+x$
$x=p _{t}-0.5$
$p _{\mathrm{N} _{2} \mathrm{O} _{5}}=0.5-2 x=0.5-2\left(p _{t}-0.5\right)=1.5-2 p _{t}$
At $t=100 \mathrm{~s} ; p _{t}=0.512 \mathrm{~atm}$
$p _{\mathrm{N} _{2} \mathrm{O} _{5}}=1.5-2 \times 0.512=0.476 \mathrm{~atm}$
Using equation (3.16)
$$ \begin{aligned} k=\frac{2.303}{t} \log \frac{p _{i}}{p _{\mathrm{A}}} & =\frac{2.303}{100 \mathrm{~s}} \log \frac{0.5 \mathrm{~atm}}{0.476 \mathrm{~atm}} \\ & =\frac{2.303}{100 \mathrm{~s}} \times 0.0216=4.98 \times 10^{-4} \mathrm{~s}^{-1} \end{aligned} $$
4.3.3 Half-Life of a Reaction
The half-life of a reaction is the time in which the concentration of a reactant is reduced to one half of its initial concentration. It is represented as t1/2.
For a zero order reaction, rate constant is given by equation 3.7.
$$ \begin{aligned} & k=\frac{[\mathrm{R}]_0-[\mathrm{R}]}{t} \\ \end{aligned} $$
$$ \begin{aligned} & \text { At } t=t_{1 / 2}, \quad[\mathrm{R}]=\frac{1}{2}[\mathrm{R}]_0 \end{aligned} $$
The rate constant at $t_{1 / 2}$ becomes
$$ \begin{aligned} k=\frac{[\mathrm{R}]_0- 1/ 2[\mathrm{R}]_0}{t_1/2} \end{aligned} $$
$$ \begin{aligned} & t_{1 / 2}=\frac{[\mathrm{R}]_0}{2 k} \end{aligned} $$
It is clear that $t_{1 / 2}$ for a zero order reaction is directly proportional to the initial concentration of the reactants and inversely proportional to the rate constant.
For the first order reaction,
$ \begin{align*} & k=\frac{2.303}{t} \log \frac{[\mathrm{R}]_0}{[\mathrm{R}]} \tag{4.15}\\ & \text { at } t _{1 / 2} \quad[\mathrm{R}]=\frac{[\mathrm{R}] _0}{2} \tag{4.16} \end{align*} $
So, the above equation becomes
$$ \begin{align*} k & =\frac{2.303}{t_{1 / 2}} \log \frac{[\mathrm{R}]_{0}}{[\mathrm{R}] / 2} \\ \end{align*} $$
$$ \begin{align*} \text { or } t_{1 / 2} & =\frac{2.303}{k} \log 2 \\ \end{align*} $$
$$ \begin{align*} t_{1 / 2} & =\frac{2.303}{k} \times 0.301 \\ \end{align*} $$
$$ \begin{align*} t_{1 / 2} & =\frac{0.693}{k} \tag{4.17} \end{align*} $$
It can be seen that for a first order reaction, half-life period is constant, i.e., it is independent of initial concentration of the reacting species. The half-life of a first order equation is readily calculated from the rate constant and vice versa.
For zero order reaction $t_{1 / 2}\propto$ $R_0$. For first order reaction $t_{1 / 2}$ is independent of $[R]_0$.
Example 3.7
A first order reaction is found to have a rate constant, $k=5.5 \times 10^{-14} \mathrm{~s}^{-1}$. Find the half-life of the reaction.
Solution
Half-life for a first order reaction is $$ \begin{aligned} & t_{1 / 2}=\frac{0.693}{k} \ & t_{1 / 2}=\frac{0.693}{5.5 \times 10^{-14} \mathrm{~s}^{-1}}=1.26 \times 10^{13} \mathrm{~s} \end{aligned} $$
Example 3.8
Show that in a first order reaction, time required for completion of $99.9 %$ is 10 times of half-life $\left(t_{1 / 2}\right)$ of the reaction.
Solution
When reaction is completed $99.9 % $, $ [R] _n = [R] _0 -0.999[R]_0$ $$ \begin{aligned} k =\frac{2.303}{t} \log \frac{[\mathrm{R}]_0}{[\mathrm{R}]} \ & =\frac{2.303}{t} \log \frac{[\mathrm{R}]_0}{[\mathrm{R}]_0-0.999[\mathrm{R}]_0} \\ & =\frac{2.303}{t} \log 10^{3}=\frac{2.303 \times 3}{t} \log 10 \\ \text { or } \mathrm{t} & =\frac{6.909}{k} \end{aligned} $$
For half-life of the reaction $$ \begin{aligned} t_{1 / 2} & =0.693 / k \ \frac{t}{t_{1 / 2}} & =\frac{6.909}{k} \times \frac{k}{0.693}=10 \end{aligned} $$
Table 4.4 summarises the mathematical features of integrated laws of zero and first order reactions.
Table 4.4: Integrated Rate Laws for the Reactions of Zero and First Order
Order | Reaction type |
Differential rate law |
Integrated rate law |
Straight line plot |
Half- life |
Units of $\boldsymbol{k}$ |
---|---|---|---|---|---|---|
0 | $\mathrm{R} \rightarrow \mathrm{P}$ | $\mathrm{d}[\mathrm{R}] / \mathrm{d} t=-k$ | $k t=[\mathrm{R}]_0-[\mathrm{R}]$ | $[\mathrm{R}]$ vs $t$ | $[\mathrm{R}]_0 / 2 k$ | conc time or mol $\mathrm{L}^{-1} \mathrm{~s}^{-1}$ |
1 | $\mathrm{R} \rightarrow \mathrm{P}$ | $\mathrm{d}[\mathrm{R}] / \mathrm{d} t=-k[\mathrm{R}]$ | $[\mathrm{R}]=[\mathrm{R}]_0 \mathrm{e}^{-k t}$ or $k t=$ $\ln \left\{[\mathrm{R}]_0 /[\mathrm{R}]\right\}$ |
$\ln [\mathrm{R}]$ vs $t$ | $\ln 2 / k$ | time $^{-1}$ or $\mathrm{s}^{-1}$ |
The order of a reaction is sometimes altered by conditions. There are many reactions which obey first order rate law although they are higher order reactions. Consider the hydrolysis of ethyl acetate which is a chemical reaction between ethyl acetate and water. In reality, it is a second order reaction and concentration of both ethyl acetate and water affect the rate of the reaction. But water is taken in large excess for hydrolysis, therefore, concentration of water is not altered much during the reaction. Thus, the rate of reaction is affected by concentration of ethyl acetate only. For example, during the hydrolysis of $0.01 \mathrm{~mol}$ of ethyl acetate with $10 \mathrm{~mol}$ of water, amounts of the reactants and products at the beginning $(t=0)$ and completion $(t)$ of the reaction are given as under.
$$ \begin{array}{lllll} & \mathrm{CH}_3 \mathrm{COOC}_2 \mathrm{H}_5 & +\mathrm{H}_2 \mathrm{O} \xrightarrow{\mathrm{H}^{+} }& \mathrm{CH}_3 \mathrm{COOH} & +\mathrm{C}_2 \mathrm{H}_5 \mathrm{OH} \\ t=0 & 0.01 \mathrm{~mol} & 10 \mathrm{~mol} & 0 \mathrm{~mol} & 0 \mathrm{~mol} \\ t & 0 \mathrm{~mol} & 9.99 \mathrm{~mol} & 0.01 \mathrm{~mol} & 0.01 \mathrm{~mol} \end{array} $$
The concentration of water does not get altered much during the course of the reaction. So, the reaction behaves as first order reaction. Such reactions are called pseudo first orderreactions.
Inversion of cane sugar is another pseudo first order reaction.
$$ \begin{aligned} & \underset{\text{Cane sugar }}{C_{12} H_{22} O_{11}} +H_2 {O} \xrightarrow{{H}^+} \underset{\text{Glucose}}{C_6 H_{12} O_6} +\underset{\text{Fructose}}{C_6 H_{12} {O}_6} \end{aligned} $$
$$ \begin{aligned} \text { Rate }=k \quad\left[C_{12} H_{22} O_{11}\right] \end{aligned} $$
Intext Questions
4.5 A first order reaction has a rate constant $1.15 \times 10^{-3} \mathrm{~s}^{-1}$. How long will $5 \mathrm{~g}$ of this reactant take to reduce to $3 \mathrm{~g}$ ?
Show Answer
Answer
From the question, we can write down the following information:
Initial amount $=5 \mathrm{~g}$
Final concentration $=3 \mathrm{~g}$
Rate constant $=1.1510^{-3} \mathrm{~s}^{-1}$
We know that for a $1^{\text {storder }}$ reaction,
$ \begin{aligned} t & =\frac{2.303}{k} \log \frac{[\mathrm{R}]_{0}}{[\mathrm{R}]} \\ & =\frac{2.303}{1.15 \times 10^{-3}} \log \frac{5}{3} \\ & =\frac{2.303}{1.15 \times 10^{-3}} \times 0.2219 \\ & =444.38 \mathrm{~s} \\ & =444 \mathrm{~s} \text { (approx) } \end{aligned} $
4.6 Time required to decompose $\mathrm{SO_2} \mathrm{Cl_2}$ to half of its initial amount is 60 minutes. If the decomposition is a first order reaction, calculate the rate constant of the reaction.
Show Answer
Answer
We know that for a $1^{\text {storder reaction, }}$
$t_{1 / 2}=\frac{0.693}{k}$
It is given that $t_{1 / 2}=60 \mathrm{~min}$
$ \begin{aligned} \therefore k & =\frac{0.693}{t_{1 / 2}} \\ & =\frac{0.693}{60} \\ & =0.01155 \mathrm{~min}^{-1} \\ & =1.155 \mathrm{~min}^{-1} \end{aligned} $
Or $k=1.925 \times 10^{-4} \mathrm{~s}^{-1}$
4.4 Temperature Dependence of the Rate of a Reaction
Most of the chemical reactions are accelerated by increase in temperature. For example, in decomposition of $\mathrm{N_2} \mathrm{O_5}$, the time taken for half of the original amount of material to decompose is $12 \mathrm{~min}$ at $50^{\circ} \mathrm{C}, 5 \mathrm{~h}$ at $25^{\circ} \mathrm{C}$ and 10 days at $0^{\circ} \mathrm{C}$. You also know that in a mixture of potassium permanganate $\left(\mathrm{KMnO_4}\right)$ and oxalic acid $\left(\mathrm{H_2} \mathrm{C_2} \mathrm{O_4}\right)$, potassium permanganate gets decolourised faster at a higher temperature than that at a lower temperature.
It has been found that for a chemical reaction with rise in temperature by $10^{\circ}$, the rate constant is nearly doubled.
The temperature dependence of the rate of a chemical reaction can be accurately explained by Arrhenius equation (4.18). It was first proposed by Dutch chemist, J.H. van’t Hoff but Swedish chemist, Arrhenius provided its physical justification and interpretation.
$$ \begin{equation*} k=\mathrm{A} \mathrm{e}^{-E \mathrm{a} / R T} \tag{4.18} \end{equation*} $$
where $A$ is the Arrhenius factor or the frequency factor. It is also called pre-exponential factor. It is a constant specific to a particular reaction. $R$ is gas constant and $E_{\mathrm{a}}$ is activation energy measured in joules/mole ( $\mathrm{J} \mathrm{mol}^{-1}$ ).
It can be understood clearly using the following simple reaction
Fig. 4.6: Formation of HI through the intermediate
$$ \mathrm{H_2}(\mathrm{~g})+\mathrm{I_2}(\mathrm{~g}) \rightarrow 2 \mathrm{HI}(\mathrm{g}) $$
According to Arrhenius, this reaction can take place only when a molecule of hydrogen and a molecule of iodine collide to form an unstable intermediate (Fig. 4.6). It exists for a very short time and then breaks up to form two molecules of hydrogen iodide.
The energy required to form this intermediate, called activated complex (C), is known as activation energy $\left(\boldsymbol{E_\mathrm{a}}\right).$ Fig. 4.7 is obtained by plotting potential energy vs reaction coordinate. Reaction coordinate represents the profile of energy change when reactants change into products.
Fig. 4.7: Diagram showing plot of potential energy vs reaction coordinate
Some energy is released when the complex decomposes to form products. So, the final enthalpy of the reaction depends upon the nature of reactants and products.
All the molecules in the reacting species do not have the same kinetic energy. Since it is difficult to predict the behaviour of any one molecule with precision, Ludwig Boltzmann and James Clark Maxwell used statistics to predict the behaviour of large number of molecules. According to them, the distribution of kinetic energy may be described by plotting the fraction of molecules $\left(N_{\mathrm{E}} / N_{\mathrm{T}}\right)$ with a given kinetic energy (E) vs kinetic energy (Fig. 4.8). Here, $N_{\mathrm{E}}$ is the number of molecules with energy $E$ and $N_{\mathrm{T}}$ is total number of molecules.
Fig. 4.8: Distribution curve showing energies among gaseous molecules
The peak of the curve corresponds to the most probable kinetic energy, i.e., kinetic energy of maximum fraction of molecules. There are decreasing number of molecules with energies higher or lower than this value. When the temperature is raised, the maximum of the curve moves to the higher energy value (Fig. 4.9) and the curve broadens out, i.e., spreads to the right such that there is a greater proportion of molecules with much higher energies. The area under the curve must be constant since total probability must be one at all times. We can mark the position of Ea on Maxwell Boltzmann distribution curve (Fig. 4.9).
Fig. 4.9: Distribution curve showing temperature dependence of rate of a reaction
Increasing the temperature of the substance increases the fraction of molecules, which collide with energies greater than Ea. It is clear from the diagram that in the curve at (t + 10), the area showing the fraction of molecules having energy equal to or greater than activation energy gets doubled leading to doubling the rate of a reaction. In the Arrhenius equation (4.18) the factor $\mathrm{e}^{-E \mathrm{Ea} / R T}$ corresponds to the fraction of molecules that have kinetic energy greater than $E_{\mathrm{a}}$. Taking natural logarithm of both sides of equation (4.18)
$$ \begin{equation*} \ln k=-\frac{E_{\mathrm{a}}}{R T}+\ln A \tag{4.19} \end{equation*} $$
The plot of $\ln k \mathrm{vs} 1 / \mathrm{T}$ gives a straight line according to the equation (3.19) as shown in Fig. 4.10.
Thus, it has been found from Arrhenius equation (4.18) that increasing the temperature or decreasing the activation energy will result in an increase in the rate of the reaction and an exponential increase in the rate constant. In Fig. 4.10, slope $=-\frac{E_{\mathrm{a}}}{R}$ and intercept $=\ln$ A. So we can calculate $E_{\mathrm{a}}$ and $A$ using these values.
Fig. 4.10: A plot between ln k and 1/T
In Fig. 4.10, slope $=-\frac{E_{\mathrm{a}}}{R}$ and intercept $=\ln$ $A$. So we can calculate $E_{\mathrm{a}}$ and $A$ using these values. At temperature $T_{1}$, equation (4.19) is
$$ \begin{equation*} \ln k_{1}=-\frac{E_{\mathrm{a}}}{R T_{1}}+\ln A \tag{4.20} \end{equation*} $$
At temperature $T_{2}$, equation (4.19) is
$$ \begin{equation*} \ln k_{2}=-\frac{E_{\mathrm{a}}}{R T_{2}}+\ln A \tag{4.21} \end{equation*} $$
(since $A$ is constant for a given reaction)
$k_{1}$ and $k_{2}$ are the values of rate constants at temperatures $T_{1}$ and $T_{2}$ respectively. Subtracting equation (4.20) from (4.21), we obtain
$$ \begin{align*} & \ln k _{2}-\ln k _{1}= \frac{E _{\mathrm{a}}}{R T _{1}}-\frac{E _{\mathrm{a}}}{R T _{2}} \\ & \ln \frac{k _{2}}{k _{1}}=\frac{E _{\mathrm{a}}}{R}\left[\frac{1}{T _{1}}-\frac{1}{T _{2}}\right] \\ & \log \frac{k _{2}}{k _{1}}=\frac{E _{\mathrm{a}}}{2.303 R}\left[\frac{1}{T _{1}}-\frac{1}{T _{2}}\right] \tag{3.22}\\ & \log \frac{k _{2}}{k _{1}}=\frac{E _{\mathrm{a}}}{2.303 \mathrm{R}}\left[\frac{T _{2}-T _{1}}{T _{1} T _{2}}\right] \end{align*} $$
Example 4.4 The rate constants of a reaction at $500 \mathrm{~K}$ and $700 \mathrm{~K}$ are $0.02 \mathrm{~s}^{-1}$ and $0.07 \mathrm{~s}^{-1}$ respectively. Calculate the values of $E_{\mathrm{a}}$ and $A$.
Solution
$$ \begin{aligned} \log \frac{k_{2}}{k_{1}} & =\frac{E_{\mathrm{a}}}{2.303 R}\left[\frac{T_{2}-T_{1}}{T_{1} T_{2}}\right] \\ \log \frac{0.07}{0.02} & =\left(\frac{E_{\mathrm{a}}}{2.303 \times 8.314 \mathrm{JK}^{-1} \mathrm{~mol}^{-1}}\right)\left[\frac{700-500}{700 \times 500}\right] \\ 0.544 & =E_{\mathrm{a}} \times 5.714 \times 10^{-4} / 19.15 \\ E_{\mathrm{a}} & =0.544 \times 19.15 / 5.714 \times 10^{-4}=18230.8 \mathrm{~J} \\ k & =A \mathrm{e}^{-E \mathrm{a} / R T} \\ 0.02 & =A \mathrm{e}^{-18230.8 / 8.314 \times 500} \\ A & =0.02 / 0.012=1.61 \end{aligned} $$
Since
Example 4.5 The first order rate constant for the decomposition of ethyl iodide by the reaction $\mathrm{C_2} \mathrm{H_5} \mathrm{I}(\mathrm{g}) \rightarrow \mathrm{C_2} \mathrm{H_4}(\mathrm{~g})+\mathrm{HI}(\mathrm{g})$ at $600 \mathrm{~K}$ is $1.60 \times 10^{-5} \mathrm{~s}^{-1}$. Its energy of activation is $209 \mathrm{~kJ} / \mathrm{mol}$. Calculate the rate constant of the reaction at $700 \mathrm{~K}$.
Solution We know that
$\log k_{2}-\log k_{1}=\frac{E_{\mathrm{a}}}{2.303 R}\left[\frac{1}{T_{1}}-\frac{1}{T_{2}}\right]$
$$ \begin{aligned} \log k_{2} & =\log k_{1}+\frac{E_{\mathrm{a}}}{2.303 R}\left[\frac{1}{T_{1}}-\frac{1}{T_{2}}\right] \\ & =\log \left(1.60 \times 10^{-5}\right)+\frac{209000 \mathrm{~J} \mathrm{~mol} \mathrm{~L}^{-1}}{2.303 \times 8.314 \mathrm{~J} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~K}^{-1}}\left[\frac{1}{600 \mathrm{~K}}-\frac{1}{700 \mathrm{~K}}\right] \\ \log k_{2} & =-4.796+2.599=-2.197 \\ k_{2} & =6.36 \times 10^{-3} \mathrm{~s}^{-1} \end{aligned} $$
4.4.1 Effect of Catalyst
A catalyst is a substance which increases the rate of a reaction without itself undergoing any permanent chemical change. For example, $\mathrm{MnO_2}$ catalyses the following reaction so as to increase its rate considerably.
$$ 2 \mathrm{KClO_3} \xrightarrow{\mathrm{MnO_2}} 2 \mathrm{KCl}+3 \mathrm{O_2} $$
The word catalyst should not be used when the added substance reduces the rate of raction. The substance is then called inhibitor. The action of the catalyst can be explained by intermediate complex theory. According to this theory, a catalyst participates in a chemical reaction by forming temporary bonds with the reactants resulting in an intermediate complex. This has a transitory existence and decomposes to yield products and the catalyst.
It is believed that the catalyst provides an alternate pathway or reaction mechanism by reducing the activation energy between reactants and products and hence lowering the potential energy barrier as shown in Fig. 4.11.
Fig. 4.11: Effect of catalyst on activation energy
It is clear from Arrhenius equation (4.18) that lower the value of activation energy faster will be the rate of a reaction.A small amount of the catalyst can catalyse a large amount of reactants. A catalyst does not alter Gibbs energy, DG of a reaction. It catalyses the spontaneous reactions but does not catalyse non-spontaneous reactions. It is also found that a catalyst does not change the equilibrium constant of a reaction rather, it helps in attaining the equilibrium faster, that is, it catalyses the forward as well as the backward reactions to the same extent so that the equilibrium state remains same but is reached earlier.
4.5 Collision Theory of Chemical Reactions
Though Arrhenius equation is applicable under a wide range of circumstances, collision theory, which was developed by Max Trautz and William Lewis in 1916 -18, provides a greater insight into the energetic and mechanistic aspects of reactions. It is based on kinetic theory of gases. According to this theory, the reactant molecules are assumed to be hard spheres and reaction is postulated to occur when molecules collide with each other. The number of collisions per second per unit volume of the reaction mixture is known as collision frequency (Z). Another factor which affects the rate of chemical reactions is activation energy (as we have already studied). For a bimolecular elementary reaction
$ \mathrm{A}+\mathrm{B} \rightarrow \text { Products } $
rate of reaction can be expressed as $$ \begin{equation*} \text { Rate }=Z_{\mathrm{AB}} \mathrm{e}^{-E_{\mathrm{a}} / R T} \tag{4.23} \end{equation*} $$
where $Z_{\mathrm{AB}}$ represents the collision frequency of reactants, $\mathrm{A}$ and $\mathrm{B}$ and $\mathrm{e}^{-E a / R T}$ represents the fraction of molecules with energies equal to or greater than $E_{\mathrm{a}}$. Comparing (4.23) with Arrhenius equation, we can say that $A$ is related to collision frequency.
Equation (4.23) predicts the value of rate constants fairly accurately for the reactions that involve atomic species or simple molecules but for complex molecules significant deviations are observed. The reason could be that all collisions do not lead to the formation of products. The collisions in which molecules collide with sufficient kinetic energy (called threshold energy*) and proper orientation, so as to facilitate breaking of bonds between reacting species and formation of new bonds to form products are called as effective collisions.
Fig. 4.12: Diagram showing molecules having proper and improper orientation
For example, formation of $\mathrm{CH_3} \mathrm{Br}+\overline{\mathrm{O}} \mathrm{H} \longrightarrow \mathrm{CH_3} \mathrm{OH}+\overline{\mathrm{Br}}$ methanol from bromoethane depends upon the orientation of reactant molecules as shown in Fig. 4.12. The proper orientation of reactant molecules lead to bond formation whereas improper orientation makes them simply bounce back and no products are formed.
To account for effective collisions, another factor P, called the probability or steric factor is introduced. It takes into account the fact that in a collision, molecules must be properly oriented i.e.,
$$ \text { Rate }=P Z_{\mathrm{AB}} \mathrm{e}^{-E_{\mathrm{a}} / R T} $$
Thus, in collision theory activation energy and proper orientation of the molecules together determine the criteria for an effective collision and hence the rate of a chemical reaction.
Collision theory also has certain drawbacks as it considers atoms/ molecules to be hard spheres and ignores their structural aspect. You will study details about this theory and more on other theories in your higher classes.
Intext Questions
4.7 What will be the effect of temperature on rate constant ?
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Answer
The rate constant of a reaction is nearly doubled with a $10^{\circ}$ rise in temperature. However, the exact dependence of the rate of a chemical reaction on temperature is given by Arrhenius equation,
$k=\mathrm{Ae}^{-E \mathrm{a} / R T}$
Where,
$A$ is the Arrhenius factor or the frequency factor
Tis the temperature
Ris the gas constant
$E_{a}$ is the activation energy
4.8 The rate of the chemical reaction doubles for an increase of $10 \mathrm{~K}$ in absolute temperature from 298K. Calculate $E_{\text {a }}$.
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Answer
It is given that $T_{1}=298 \mathrm{~K}$
$\therefore T_{2}=(298+10) \mathrm{K}$
$=308 \mathrm{~K}$
We also know that the rate of the reaction doubles when temperature is increased by $10^{\circ}$.
Therefore, let us take the value of $k_{1}=k$ and that of $k_{2}=2 k$
Also, $R=8.314 \mathrm{~J} \mathrm{~K}^{-1} \mathrm{~mol}^{-1}$
Now, substituting these values in the equation:
$\log \frac{k_{2}}{k_{1}}=\frac{E_{\mathrm{a}}}{2.303 R}\left[\frac{T_{2}-T_{1}}{T_{1} T_{2}}\right]$
We get:
$\log \frac{2 k}{k}=\frac{E_{\mathrm{a}}}{2.303 \times 8.314}\left[\frac{10}{298 \times 308}\right]$
$\Rightarrow \log 2=\frac{E_{\mathrm{a}}}{2.303 \times 8.314}\left[\frac{10}{298 \times 308}\right]$
$\Rightarrow E_{\mathrm{a}}=\frac{2.303 \times 8.314 \times 298 \times 308 \times \log 2}{10}$
$=52897.78 \mathrm{~J} \mathrm{~mol}^{-1}$
$=52.9 \mathrm{~kJ} \mathrm{~mol}^{-1}$
Note: There is a slight variation in this answer and the one given in the NCERT textbook.
4.9 The activation energy for the reaction $ 2 \mathrm{HI}(\mathrm{g}) \rightarrow \mathrm{H_2}+\mathrm{I_2}(\mathrm{~g}) $ is $209.5 \mathrm{~kJ} \mathrm{~mol}^{-1}$ at $581 \mathrm{~K}$.Calculate the fraction of molecules of reactants having energy equal to or greater than activation energy?
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Answer
In the given case:
$E_{\mathrm{a}}=209.5 \mathrm{~kJ} \mathrm{~mol}^{-1}=209500 \mathrm{~J} \mathrm{~mol}^{-1}$
$T=581 \mathrm{~K}$
$R=8.314 \mathrm{JK}^{-1} \mathrm{~mol}^{-1}$
Now, the fraction of molecules of reactants having energy equal to or greater than activation energy is given as: $x=e-E a / R T \Rightarrow \operatorname{In} x=-E$
Summary
Chemical kinetics is the study of chemical reactions with respect to reaction rates, effect of various variables, rearrangement of atoms and formation of intermediates. The rate of a reaction is concerned with decrease in concentration of reactants or increase in the concentration of products per unit time. It can be expressed as instantaneous rate at a particular instant of time and average rate over a large interval of time. A number of factors such as temperature, concentration of reactants, catalyst, affect the rate of a reaction. Mathematical representation of rate of a reaction is given by rate law. It has to be determined experimentally and cannot be predicted. Order of a reaction with respect to a reactant is the power of its concentration which appears in the rate law equation. The order of a reaction is the sum of all such powers of concentration of terms for different reactants. Rate constant is the proportionality factor in the rate law. Rate constant and order of a reaction can be determined from rate law or its integrated rate equation. Molecularity is defined only for an elementary reaction. Its values are limited from 1 to 3 whereas order can be 0, 1, 2, 3 or even a fraction. Molecularity and order of an elementary reaction are same.
Temperature dependence of rate constants is described by Arrhenius equation $\left(k=A \mathrm{e}^{-E \mathrm{a} / R T}\right) . \quad E_{\mathrm{a}}$ corresponds to the activation energy and is given by the energy difference between activated complex and the reactant molecules, and $A$ (Arrhenius factor or pre-exponential factor) corresponds to the collision frequency. The equation clearly shows that increase of temperature or lowering of $\mathrm{E_a}$ will lead to an increase in the rate of reaction and presence of a catalyst lowers the activation energy by providing an alternate path for the reaction. According to collision theory, another factor $P$ called steric factor which refers to the orientation of molecules which collide, is important and contributes to effective collisions, thus, modifying the Arrhenius equation to $k=P Z_{\mathrm{AB}} \mathrm{e}^{-E_{\mathrm{a}} / R T}$.
Exercises
4.1 From the rate expression for the following reactions, determine their order of reaction and the dimensions of the rate constants.
$$ \begin{aligned} & \text { (i) } 3 \mathrm{NO} \text { (g) } \rightarrow \mathrm{N_2} \mathrm{O} \text { (g) } \text { Rate }=k[\mathrm{NO}]^{2} \\ & \text { (ii) } \mathrm{H_2} \mathrm{O_2} \text { (aq) }+3 \mathrm{I}^{-}(\mathrm{aq})+2 \mathrm{H}^{+} \rightarrow 2 \mathrm{H_2} \mathrm{O}(\mathrm{l})+\mathrm{I_3}^{-} \quad \text { Rate }=k\left[\mathrm{H_2} \mathrm{O_2}\right]\left[\mathrm{I}^{-}\right] \\ & \text {(iii) } \mathrm{CH_3} \mathrm{CHO} \text { (g) } \rightarrow \mathrm{CH_4} \text { (g) }+\mathrm{CO}(\mathrm{g}) \quad \text { Rate }=k\left[\mathrm{CH_3} \mathrm{CHO}\right]^{3 / 2} \\ & \text { (iv) } \mathrm{C_2} \mathrm{H_5} \mathrm{Cl} \text { (g) } \rightarrow \mathrm{C_2} \mathrm{H_4} \text { (g) }+\mathrm{HCl} \text { (g) } \text { Rate }=k\left[\mathrm{C_2} \mathrm{H_5} \mathrm{Cl}\right] \end{aligned} $$
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Answer
(i) Given rate $=k[\mathrm{NO}]^{2}$
Therefore, order of the reaction $=2$
Dimension of $k=\frac{\text { Rate }}{[\mathrm{NO}]^{2}}$
$=\frac{\mathrm{mol} \mathrm{L}^{-1} \mathrm{~s}^{-1}}{\left(\mathrm{~mol} \mathrm{~L}^{-1}\right)^{2}}$
$=\frac{\mathrm{mol} \mathrm{L}^{-1} \mathrm{~s}^{-1}}{\mathrm{~mol}^{2} \mathrm{~L}^{-2}}$
$=\mathrm{L} \mathrm{mol}^{-1} \mathrm{~s}^{-1}$
(ii) Given rate $=k\left[\mathrm{H_2} \mathrm{O_2}\right]\left[\mathrm{l}^{-}\right]$
Therefore, order of the reaction $=2$
Dimension of $ k=\frac{\text { Rate }}{\left[\mathrm{H_2} \mathrm{O_2}\right]\left[\mathrm{I}^{-}\right]} $
$ \begin{aligned} & =\frac{\mathrm{mol} \mathrm{L}^{-1} \mathrm{~s}^{-1}}{\left(\mathrm{~mol} \mathrm{~L}^{-1}\right)\left(\mathrm{mol} \mathrm{L}^{-1}\right)} \\ & =\mathrm{L} \mathrm{mol}^{-1} \mathrm{~s}^{-1} \end{aligned} $
(iii) Given rate $=k\left[\mathrm{CH_3} \mathrm{CHO}\right]^{3 / 2}$
Therefore, order of reaction $=\frac{3}{2}$
Dimension of $ k=\frac{\text { Rate }}{\left[\mathrm{CH_3} \mathrm{CHO}\right]^{\frac{3}{2}}} $
$ \begin{aligned} & =\frac{\mathrm{mol} \mathrm{L}^{-1} \mathrm{~s}^{-1}}{\left(\mathrm{~mol} \mathrm{~L}^{-1}\right)^{\frac{3}{2}}} \\ & =\frac{\mathrm{mol} \mathrm{L}^{-1} \mathrm{~s}^{-1}}{\mathrm{~mol}^{\frac{3}{2}} \mathrm{~L}^{-\frac{3}{2}}} \\ & =\mathrm{L}^{\frac{1}{2}} \mathrm{~mol}^{-\frac{1}{2}} \mathrm{~s}^{-1} \end{aligned} $
(iv) Given rate $=k\left[\mathrm{C_2} \mathrm{H_5} \mathrm{Cl}\right]$
Therefore,order of the reaction $=1$
Dimension of $k=\frac{\text { Rate }}{\left[\mathrm{C_2} \mathrm{H_5} \mathrm{Cl}\right]}$
$=\frac{\mathrm{mol} \mathrm{L}^{-1} \mathrm{~s}^{-1}}{\mathrm{~mol} \mathrm{~L}^{-1}}$
$=\mathrm{s}^{-1}$
4.2 For the reaction: $ 2 \mathrm{~A}+\mathrm{B} \rightarrow \mathrm{A_2} \mathrm{~B} $ the rate $=k[\mathrm{~A}][\mathrm{B}]^{2}$ with $\mathrm{k}=2.0 \times 10^{-6} \mathrm{~mol}^{-2} \mathrm{~L}^{2} \mathrm{~s}^{-1}$. Calculate the initial rate of the reaction when $[\mathrm{A}]=0.1 \mathrm{~mol} \mathrm{~L}^{-1},[\mathrm{~B}]=0.2 \mathrm{~mol} \mathrm{~L}^{-1}$. Calculate the rate of reaction after $[\mathrm{A}]$ is reduced to $0.06 \mathrm{~mol} \mathrm{~L}^{-1}$.
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Answer
The initial rate of the reactionis
Rate $=k[\mathrm{~A}][\mathrm{B}]^{2}$
$=\left(2.0 \times 10^{-6} \mathrm{~mol}^{-2} \mathrm{~L}^{2} \mathrm{~S}^{-1}\right)\left(0.1 \mathrm{~mol} \mathrm{~L}^{-1}\right)\left(0.2 \mathrm{~mol} \mathrm{~L}^{-1}\right)^{2}$
$=8.0 \times 10^{-9} \mathrm{~mol}^{-2} \mathrm{~L}^{2} \mathrm{~S}^{-1}$
When $[A]$ is reduced from $0.1 \mathrm{~mol} \mathrm{~L}^{-1}$ to $0.06 \mathrm{~mol}^{-1}$, the concentration of A reacted $=(0.1-0.06) \mathrm{mol} \mathrm{L}^{-1}=0.04 \mathrm{~mol} \mathrm{~L}^{-1}$
Therefore, concentration of B reacted $=\frac{1}{2} \times 0.04 \mathrm{~mol} \mathrm{~L}^{-1}=0.02 \mathrm{~mol} \mathrm{~L}^{-1}$
Then, concentration of $B$ available, $[B]=(0.2-0.02) \mathrm{mol} \mathrm{L}^{-1}$
$=0.18 \mathrm{~mol} \mathrm{~L}^{-1}$
After $[A]$ is reduced to $0.06 \mathrm{~mol} \mathrm{~L}^{-1}$, the rate of the reaction is given by,
Rate $=k[\mathrm{~A}][\mathrm{B}]^{2}$
$=\left(2.0 \times 10^{-6} \mathrm{~mol}^{-2} \mathrm{~L}^{2} \mathrm{~S}^{-1}\right)\left(0.06 \mathrm{~mol} \mathrm{~L}^{-1}\right)\left(0.18 \mathrm{~mol} \mathrm{~L}^{-1}\right)^{2}$ $=3.89 \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~S}^{-1}$
4.3 The decomposition of $\mathrm{NH_3}$ on platinum surface is zero order reaction. What are the rates of production of $\mathrm{N_2}$ and $\mathrm{H_2}$ if $k=2.5 \times 10^{-4} \mathrm{~mol}^{-1} \mathrm{~L} \mathrm{~s}^{-1}$ ?
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Answer
The decomposition of $\mathrm{NH_3}$ on platinum surface is represented by the following equation.
$2 \mathrm{NH_3(g)} \xrightarrow{\mathrm{Pt}} \mathrm{N_2(g)}+3 \mathrm{H_2(g)}$
Therefore,
Rate $=-\frac{1}{2} \frac{d\left[\mathrm{NH_3}\right]}{d t}=\frac{d\left[\mathrm{~N_2}\right]}{d t}=\frac{1}{3} \frac{d\left[\mathrm{H_2}\right]}{d t}$
However, it is given that the reaction is of zero order.
Therefore,
$$ \begin{aligned} -\frac{1}{2} \frac{d\left[\mathrm{NH_3}\right]}{d t}=\frac{d\left[\mathrm{~N_2}\right]}{d t}=\frac{1}{3} \frac{d\left[\mathrm{H_2}\right]}{d t} & =k \\ & =2.5 \times 10^{-4} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1} \end{aligned} $$
Therefore, the rate of production of $\mathrm{N_2}$ is
$$ \frac{d\left[\mathrm{~N_2}\right]}{d t}=2.5 \times 10^{-4} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1} $$
And, the rate of production of $\mathrm{H_2}$ is
$$ \frac{d\left[\mathrm{H_2}\right]}{d t}=3 \times 2.5 \times 10^{-4} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1} $$
$=7.5 \times 10^{-4} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~S}^{-1}$
4.4 The decomposition of dimethyl ether leads to the formation of $\mathrm{CH_4}, \mathrm{H_2}$ and $\mathrm{CO}$ and the reaction rate is given by $ \text { Rate }=k\left[\mathrm{CH_3} \mathrm{OCH_3}\right]^{3 / 2} $ The rate of reaction is followed by increase in pressure in a closed vessel, so the rate can also be expressed in terms of the partial pressure of dimethyl ether, i.e., $ \text { Rate }=k\left(p_{\mathrm{CH_3} \mathrm{OCH_3}}\right)^{3 / 2} $ If the pressure is measured in bar and time in minutes, then what are the units of rate and rate constants?
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Answer
If pressure is measured in bar and time in minutes, then
Unit of rate $=$ bar $\min ^{-1}$
Rate $=k\left(p_{\mathrm{CH_3} \mathrm{OCH_3}}\right)^{3 / 2}$
$\Rightarrow k=\frac{\text { Rate }}{\left(p_{\mathrm{CH_3} \mathrm{OCH_3}}\right)^{3 / 2}}$
Therefore, unit of rate constants $(k) = \frac{\text{bar min}^{-1}}{\text{bar}^{3/2}} $
$=\operatorname{bar}^{-1 / 2} \min ^{-1}$
4.5 Mention the factors that affect the rate of a chemical reaction.
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Answer
The factors that affect the rate of a reaction areas follows.
(i) Concentration of reactants (pressure in case of gases)
(ii) Temperature
(iii) Presence of a catalyst
4.6 A reaction is second order with respect to a reactant. How is the rate of reaction affected if the concentration of the reactant is
(i) doubled
(ii) reduced to half?
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Answer
Letthe concentration of the reactant be $[\mathrm{A}]=\mathrm{a}$
Rate of reaction, $\mathrm{R}=k[\mathrm{~A}]^{2}$
$=k a^{2}$
(i)If the concentration of the reactant is doubled, i.e. $[A]=2 a$, then the rate of the reaction would be
$ \mathrm{R}^{\prime}=k(2 a)^{2} $
$=4 \mathrm{ka}^{2}$
$=4 \mathrm{R}$
Therefore, the rate of the reaction would increase by 4 times.
(ii) If the concentration of the reactant is reduced to half, i.e.$[\mathrm{A}]=\frac{1}{2} a$, then the reate of the reaction would be
$ \begin{aligned} & R^{*}=k\left(\frac{1}{2} a\right)^{2} \\ & =\frac{1}{4} k a^{2} \\ & =\frac{1}{4} R \end{aligned} $
Therefore, the rate of the reaction would be reduced to $\frac{1}{4}^{\text {th }}$.
4.7 What is the effect of temperature on the rate constant of a reaction? How can this effect of temperature on rate constant be represented quantitatively?
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Answer
The rate constant is nearly doubled with a rise in temperature by $10^{\circ}$ for a chemical reaction.
The temperature effect on the rate constant can be represented quantitatively by Arrhenius equation,
$k=\mathrm{A} e^{-E_{\mathrm{s}} / \mathrm{R} T}$
where, kis the rate constant,
$A$ is the Arrhenius factor or the frequency factor,
$\mathrm{R}$ is the gas constant,
Tis the temperature, and
$E_{a}$ is the energy of activation for the reaction
4.8 In a pseudo first order reaction in water, the following results were obtained:
$\mathrm{t} / \mathrm{s}$ | 0 | 30 | 60 | 90 |
---|---|---|---|---|
$[\mathrm{A}] / \mathrm{mol} \mathrm{L}^{-1}$ | 0.55 | 0.31 | 0.17 | 0.085 |
Calculate the average rate of reaction between the time interval 30 to 60 seconds.
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Answer
(i) Average rate of reaction between the time interval, 30 to 60 seconds, $ =\frac{d[\text { Ester }]}{d t} $
$ \begin{aligned} & =\frac{0.31-0.17}{60-30} \\ & =\frac{0.14}{30} \\ & =4.67 \times 10^{-3} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~s}^{-1} \end{aligned} $
(ii) For a pseudo first order reaction,
$k=\frac{2.303}{t} \log \frac{[\mathrm{R}]_{0}}{[\mathrm{R}]}$
For $t=30 \mathrm{~s}, \quad k_{1}=\frac{2.303}{30} \log \frac{0.55}{0.31}$
$=1.911 \times 10^{-2} \mathrm{~s}^{-1}$
For $t=60 \mathrm{~s}, \quad k_{2}=\frac{2.303}{60} \log \frac{0.55}{0.17}$
$=1.957 \times 10^{-2} \mathrm{~S}^{-1}$
For $t=90 \mathrm{~s}, \quad k_{3}=\frac{2.303}{90} \log \frac{0.55}{0.085}$
$=2.075 \times 10^{-2} \mathrm{~S}^{-1}$
Then, average rate constant,
$
k=\frac{k_{1}+k_{2}+k_{3}}{3}
$
$ \begin{aligned} & =\frac{\left(1.911 \times 10^{-2}\right)+\left(1.957 \times 10^{-2}\right)+\left(2.075 \times 10^{-2}\right)}{3} \\ & =1.98 \times 10^{-2} \mathrm{~s}^{-1} \end{aligned} $
4.9 A reaction is first order in A and second order in B.
(i) Write the differential rate equation.
(ii) How is the rate affected on increasing the concentration of $B$ three times?
(iii) How is the rate affected when the concentrations of both A and B are doubled?
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Answer
(i) The differential rate equation will be
$ -\frac{d[\mathrm{R}]}{d t}=k[\mathrm{~A}][\mathrm{B}]^{2} $
(ii) If the concentration of $\mathrm{B}$ is increased three times, then
$ \begin{aligned} -\frac{d[\mathrm{R}]}{d t} & =k[\mathrm{~A}][3 \mathrm{~B}]^{2} \\ & =9 \cdot k[\mathrm{~A}][\mathrm{B}]^{2} \end{aligned} $
Therefore, the rate of reaction will increase 9 times.
(iii) When the concentrations of both $A$ and $B$ are doubled,
$ \begin{aligned} -\frac{d[\mathrm{R}]}{d t} & =k[\mathrm{~A}][\mathrm{B}]^{2} \\ & =k[2 \mathrm{~A}][2 \mathrm{~B}]^{2} \\ & =8 \cdot k[\mathrm{~A}][\mathrm{B}]^{2} \end{aligned} $
Therefore, the rate of reaction will increase 8 times.
4.10 In a reaction between $A$ and $B$, the initial rate of reaction $\left(r_{0}\right)$ was measured for different initial concentrations of $\mathrm{A}$ and $\mathrm{B}$ as given below: What is the order of the reaction with respect to $\mathrm{A}$ and $\mathrm{B}$ ?
$\mathrm{A} / \mathrm{mol} \mathrm{L}^{-1}$ | 0.20 | 0.20 | 0.40 |
---|---|---|---|
$\mathrm{B} / \mathrm{mol} \mathrm{L}^{-1}$ | 0.30 | 0.10 | 0.05 |
$\mathrm{r_0} / \mathrm{mol} \mathrm{L}^{-1} \mathrm{~s}^{-1}$ | $5.07 \times 10^{-5}$ | $5.07 \times 10^{-5}$ | $1.43 \times 10^{-4}$ |
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Answer
Let the order of the reaction with respect to $\mathrm{A}$ be xand with respect to $\mathrm{B}$ be $y$.
Therefore, $\mathrm{r_0}=k[\mathrm{~A}]^{x}[\mathrm{~B}]^{y}$
$5.07 \times 10^{-5}=k[0.20]^{x}[0.30]^{v}\quad \quad \quad \text{(i)}$
$5.07 \times 10^{-5}=k[0.20]^{x}[0.10]^{y}\quad \quad \quad \text{(ii)}$
$1.43 \times 10^{-4}=k[0.40]^{x}[0.05]^{y}\quad \quad \quad \text{(iii)}$
Dividing equation (i) by (ii), we obtain
$\frac{5.07 \times 10^{-5}}{5.07 \times 10^{-5}}=\frac{k[0.20]^{x}[0.30]^{y}}{k[0.20]^{x}[0.10]^{y}}$
$\Rightarrow 1=\frac{[0.30]^{y}}{[0.10]^{y}}$
$\Rightarrow\left(\frac{0.30}{0.10}\right)^{0}=\left(\frac{0.30}{0.10}\right)^{y}$
$\Rightarrow y=0$
Dividing equation (iii) by (ii), we obtain
$\frac{1.43 \times 10^{-4}}{5.07 \times 10^{-5}}=\frac{k[0.40]^{x}[0.05]^{y}}{k[0.20]^{x}[0.30]^{y}}$
$\Rightarrow \frac{1.43 \times 10^{-4}}{5.07 \times 10^{-5}}=\frac{[0.40]^{x}}{[0.20]^{x}} \quad\left[\begin{array}{l}\text { Since } y=0, \\ {[0.05]^{y}=[0.30]^{y}=1}\end{array}\right]$
$\Rightarrow 2.821=2^{x}$
$\Rightarrow \log 2.821=x \log 2 \quad$ (Taking log on both sides)
$\Rightarrow x=\frac{\log 2.821}{\log 2}$
$=1.496$
$=1.5$ (approximately)
Hence, the order of the reaction with respect to $A$ is 1.5 and with respect to $B$ is zero.
4.11 The following results have been obtained during the kinetic studies of the reaction: $ 2 \mathrm{~A}+\mathrm{B} \rightarrow \mathrm{C}+\mathrm{D} $ Determine the rate law and the rate constant for the reaction.
Experiment | $[\mathrm{A}] / \mathrm{mol} \mathrm{L}^{-1}$ | $[\mathrm{~B}] / \mathrm{mol} \mathrm{L}^{-1}$ | Initial rate of formation of $\mathrm{D} / \mathrm{mol} \mathrm{L}^{-1} \mathrm{~min}^{-1}$ |
---|---|---|---|
I | 0.1 | 0.1 | $6.0 \times 10^{-3}$ |
II | 0.3 | 0.2 | $7.2 \times 10^{-2}$ |
III | 0.3 | 0.4 | $2.88 \times 10^{-1}$ |
IV | 0.4 | 0.1 | $2.40 \times 10^{-2}$ |
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Answer
Let the order of the reaction with respect to $\mathrm{A}$ be xand with respect to $\mathrm{B}$ be $y$.
Therefore, rate of the reaction is given by,
Rate $=k[\mathrm{~A}]^{x}[\mathrm{~B}]^{y}$
According to the question,
$6.0 \times 10^{-3}=k[0.1]^{x}[0.1]^{y}\quad \quad \quad \text{(i)}$
$7.2 \times 10^{-2}=k[0.3]^{x}[0.2]^{y}\quad \quad \quad \text{(ii)}$
$2.88 \times 10^{-1}=k[0.3]^{x}[0.4]^{y}\quad \quad \quad \text{(iii)}$
$2.40 \times 10^{-2}=k[0.4]^{x}[0.1]^{y}\quad \quad \quad \text{(iv)}$
Dividing equation (iv) by (i), we obtain
$ \begin{aligned} & \frac{2.40 \times 10^{-2}}{6.0 \times 10^{-3}}=\frac{k[0.4]^{x}[0.1]^{y}}{k[0.1]^{x}[0.1]^{y}} \\ & \Rightarrow 4=\frac{[0.4]^{x}}{[0.1]^{x}} \\ & \Rightarrow 4=\left(\frac{0.4}{0.1}\right)^{x} \\ & \Rightarrow(4)^{1}=4^{x} \\ & \Rightarrow x=1 \end{aligned} $
Dividing equation (iii) by (ii), we obtain
Therefore, the rate law is
Rate $=k[\mathrm{~A}][\mathrm{B}]^{2}$
$\Rightarrow k=\frac{\text { Rate }}{[\mathrm{A}][\mathrm{B}]^{2}}$
From experiment I, we obtain
$k=\frac{6.0 \times 10^{-3} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~min}^{-1}}{\left(0.1 \mathrm{~mol} \mathrm{~L}^{-1}\right)\left(0.1 \mathrm{~mol} \mathrm{~L}^{-1}\right)^{2}}$
$=6.0 \mathrm{~L}^{2} \mathrm{~mol}^{-2} \mathrm{~min}^{-1}$
From experiment II, weobtain
$k=\frac{7.2 \times 10^{-2} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~min}^{-1}}{\left(0.3 \mathrm{~mol} \mathrm{~L}^{-1}\right)\left(0.2 \mathrm{~mol} \mathrm{~L}^{-1}\right)^{2}}$
$=6.0 \mathrm{~L}^{2} \mathrm{~mol}^{-2} \mathrm{~min}^{-1}$
From experiment III, we obtain
$k=\frac{2.88 \times 10^{-1} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~min}^{-1}}{\left(0.3 \mathrm{~mol} \mathrm{~L}^{-1}\right)\left(0.4 \mathrm{~mol} \mathrm{~L}^{-1}\right)^{2}}$
$=6.0 \mathrm{~L}^{2} \mathrm{~mol}^{-2} \mathrm{~min}^{-1}$
From experiment IV, we obtain
$k=\frac{2.40 \times 10^{-2} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~min}^{-1}}{\left(0.4 \mathrm{~mol} \mathrm{~L}^{-1}\right)\left(0.1 \mathrm{~mol} \mathrm{~L}^{-1}\right)^{2}}$
$=6.0 \mathrm{~L}^{2} \mathrm{~mol}^{-2} \mathrm{~min}^{-1}$
Therefore, rate constant, $k=6.0 \mathrm{~L}^{2} \mathrm{~mol}^{-2} \mathrm{~min}^{-1}$
4.12 The reaction between A and B is first order with respect to A and zero order with respect to $\mathrm{B}$. Fill in the blanks in the following table:
Experiment | $[\mathrm{A}] / \mathrm{mol} \mathrm{L}^{-1}$ | $[\mathrm{~B}] / \mathrm{mol} \mathrm{L}^{-1}$ | Initial rate/ $\mathrm{mol} \mathrm{L}^{-1} \mathrm{~min}^{-1}$ |
---|---|---|---|
I | 0.1 | 0.1 | $2.0 \times 10^{-2}$ |
II | - | 0.2 | $4.0 \times 10^{-2}$ |
III | 0.4 | 0.4 | - |
IV | - | 0.2 | $2.0 \times 10^{-2}$ |
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Answer
The given reaction is of the first order with respect to $A$ and of zero order with respect to $B$.
Therefore, the rate of the reaction is given by,
Rate $=k[\mathrm{~A}]^{1}[\mathrm{~B}]^{0}$
$\Rightarrow$ Rate $=k[A]$
From experiment I, we obtain
$2.0 \times 10^{-2} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~min}^{-1}=\mathrm{k}\left(0.1 \mathrm{~mol} \mathrm{~L}^{-1}\right)$
$\Rightarrow k=0.2 \mathrm{~min}^{-1}$
From experiment II, we obtain
$4.0 \times 10^{-2} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~min}^{-1}=0.2 \mathrm{~min}^{-1}[\mathrm{~A}]$
$\Rightarrow[\mathrm{A}]=0.2 \mathrm{~mol} \mathrm{~L}^{-1}$
From experiment III, we obtain
Rate $=0.2 \mathrm{~min}^{-1} \times 0.4 \mathrm{~mol} \mathrm{~L}^{-1}$
$=0.08 \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~min}^{-1}$
From experiment IV, we obtain
$2.0 \times 10^{-2} \mathrm{~mol} \mathrm{~L}^{-1} \mathrm{~min}^{-1}=0.2 \mathrm{~min}^{-1}[\mathrm{~A}]$
$\Rightarrow[A]=0.1 \mathrm{~mol} \mathrm{~L}^{-1}$
4.13 Calculate the half-life of a first order reaction from their rate constants given below:
(i) $200 \mathrm{~s}^{-1}$
(ii) $2 \mathrm{~min}^{-1}$
(iii) 4 years $^{-1}$
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Answer
(i) Half life, $t_{1 / 2}=\frac{0.693}{k}$
$=\frac{0.693}{200 \mathrm{~s}^{-1}}$
$=3.47 \times 10^{-3} \mathrm{~s}$ (approximately)
(ii) Half life, $t_{1 / 2}=\frac{0.693}{k}$
$=\frac{0.693}{2 \min ^{-1}}$
$=0.35 \mathrm{~min}$ (approximately) (iii) Half life, $t_{1 / 2}=\frac{0.693}{k}$
$=\frac{0.693}{4 \text { years }^{-1}}$
$=0.173$ years (approximately)
4.14 The half-life for radioactive decay of ${ }^{14} \mathrm{C}$ is 5730 years. An archaeological artifact containing wood had only $80 \%$ of the ${ }^{14} \mathrm{C}$ found in a living tree. Estimate the age of the sample.
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Answer
Here, $k=\frac{0.693}{t_{1 / 2}}$
$=\frac{0.693}{5730}$ years $^{-1}$
It is known that,
$ \begin{aligned} t & =\frac{2.303}{k} \log \frac{[\mathrm{R}]_{0}}{[\mathrm{R}]} \\ & =\frac{2.303}{\frac{0.693}{5730}} \log \frac{100}{80} \end{aligned} $
$=1845$ years (approximately)
Hence, the age of the sample is 1845 years.
4.15 The experimental data for decomposition of $\mathrm{N_2} \mathrm{O_5}$ $ \left[2 \mathrm{~N_2} \mathrm{O_5} \rightarrow 4 \mathrm{NO_2}+\mathrm{O_2}\right] $ in gas phase at $318 \mathrm{~K}$ are given below:
$t / \mathrm{s}$ | 0 | 400 | 800 | 1200 | 1600 | 2000 | 2400 | 2800 | 3200 |
---|---|---|---|---|---|---|---|---|---|
$10^{2} \times\left[\mathrm{N_2} \mathrm{O_5}\right] /$ $\mathrm{mol} \mathrm{L}^{-1}$ |
1.63 | 1.36 | 1.14 | 0.93 | 0.78 | 0.64 | 0.53 | 0.43 | 0.35 |
(i) Plot $\left[\mathrm{N_2} \mathrm{O_5}\right]$ against $t$.
(ii) Find the half-life period for the reaction.
(iii) Draw a graph between $\log \left[\mathrm{N_2} \mathrm{O_5}\right]$ and $t$.
(iv) What is the rate law ?
(v) Calculate the rate constant.
(vi) Calculate the half-life period from $k$ and compare it with (ii).
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Answer
$~$$\mathrm{t}(\mathrm{s}) \longrightarrow$
(ii) Time corresponding to the concentration, $\frac{1.630 \times 10^{2}}{2} \mathrm{~mol} \mathrm{~L}^{-1}=81.5 \mathrm{~mol} \mathrm{~L}^{-1}$, is the half life. From the graph, the half life is obtained as $1450 \mathrm{~s}$.
(iii)
$\mathbf{t}(\mathbf{s})$ | $10^{2} \times\left[\mathrm{N_2} \mathrm{O_5}\right] / \mathrm{molL}^{-1}$ | $\log \left[\mathrm{N_2} \mathrm{O_5}\right]$ |
---|---|---|
0 | 1.63 | - 1.79 |
400 | 1.36 | - 1.87 |
800 | 1.14 | - 1.94 |
1200 | 0.93 | -2.03 |
1600 | 0.78 | -2.11 |
2000 | 0.64 | - 2.19 |
2400 | 0.53 | -2.28 |
2800 | 0.43 | -2.37 |
3200 | 0.35 | -2.46 |
(iv) The given reaction is of the first order as the plot, $\log \left[\mathrm{N_2} \mathrm{O_5}\right] \mathrm{v} / \mathrm{s} t$, is a straight line. Therefore, the rate law of the reaction is
Rate $=k\left[\mathrm{~N_2} \mathrm{O_5}\right]$
(v) From the plot, $\log \left[\mathrm{N_2} \mathrm{O_5}\right]$ v/s $t$, we obtain
$ \begin{aligned} \text { Slope } & =\frac{-2.46-(-1.79)}{3200-0} \\ & =\frac{-0.67}{3200} \end{aligned} $
Again, slope of the line of the plot $\log \left[\mathrm{N_2} \mathrm{O_5}\right]$ v/s $t$ is given by
$ -\frac{k}{2.303} $
Therefore, we obtain,
$ -\frac{k}{2.303}=-\frac{0.67}{3200} $
4.16 The rate constant for a first order reaction is $60 \mathrm{~s}^{-1}$. How much time will it take to reduce the initial concentration of the reactant to its $1 / 16^{\text {th }}$ value?
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Answer
It is known that,
$ \begin{aligned} t & =\frac{2.303}{k} \log \frac{[\mathrm{R}]_{0}}{[\mathrm{R}]} \\ & =\frac{2.303}{60 \mathrm{~s}^{-1}} \log \frac{1}{1 / 16} \\ & =\frac{2.303}{60 \mathrm{~s}^{-1}} \log 16 \\ & =4.6 \times 10^{-2} \mathrm{~s} \text { (approximately) } \end{aligned} $
Hence, the required time is $4.6 \times 10^{-2} \mathrm{~s}$.
4.17 During nuclear explosion, one of the products is ${ }^{90} \mathrm{Sr}$ with half-life of 28.1 years. If $1 \mu \mathrm{g}$ of ${ }^{90} \mathrm{Sr}$ was absorbed in the bones of a newly born baby instead of calcium, how much of it will remain after 10 years and 60 years if it is not lost metabolically.
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Answer
Here,
$ k=\frac{0.693}{t_{1 / 2}}=\frac{0.693}{28.1} \mathrm{y}^{-1} $
It is known that,
$ \begin{aligned} & t=\frac{2.303}{k} \log \frac{[\mathrm{R}]_{0}}{[\mathrm{R}]} \\ & \Rightarrow 10=\frac{2.303}{\frac{0.693}{28.1}} \log \frac{1}{[\mathrm{R}]} \\ & \Rightarrow 10=\frac{2.303}{\frac{0.693}{28.1}}(-\log [\mathrm{R}]) \\ & \Rightarrow \log [\mathrm{R}]=-\frac{10 \times 0.693}{2.303 \times 28.1} \\ & \Rightarrow[\mathrm{R}]=\operatorname{antilog}(-0.1071) \\ & \quad=\operatorname{antilog}(\overline{1} .8929) \\ & \quad=0.7814 \mu \mathrm{g} \end{aligned} $
Therefore, $0.7814 \mu \mathrm{~g}$ of ${ }^{90} \mathrm{Sr}$ will remain after 10 years.
Again,
$ \begin{aligned} & t=\frac{2.303}{k} \log \frac{[\mathrm{R}]_{0}}{[\mathrm{R}]} \\ & \Rightarrow 60=\frac{2.303}{\frac{0.693}{28.1}} \log \frac{1}{[\mathrm{R}]} \\ & \Rightarrow \log [\mathrm{R}]=-\frac{60 \times 0.693}{2.303 \times 28.1} \\ & \Rightarrow[\mathrm{R}]=\operatorname{antilog}(-0.6425) \\ & \quad=\operatorname{antilog}(\overline{1} .3575) \\ & \quad=0.2278 \mu \mathrm{g} \end{aligned} $
Therefore, $0.2278 \mu \mathrm{~g} $ of $ { }^{90} \mathrm{Sr}$ will remain after 60 years.
4.18 For a first order reaction, show that time required for $99 \%$ completion is twice the time required for the completion of $90 \%$ of reaction.
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Answer
For a first order reaction, the time required for $99 \%$ completionis
$ \begin{aligned} t_{1} & =\frac{2.303}{k} \log \frac{100}{100-99} \\ & =\frac{2.303}{k} \log 100 \\ & =2 \times \frac{2.303}{k} \end{aligned} $
For a first order reaction, the time required for $90 \%$ completion is
$ \begin{aligned} t_{2} & =\frac{2.303}{k} \log \frac{100}{100-90} \\ & =\frac{2.303}{k} \log 10 \\ & =\frac{2.303}{k} \end{aligned} $
Therefore, $t_{1}=2 t_{2}$
Hence, the time required for $99 \%$ completion of a first order reaction is twice the time required for the completion of $90 \%$ of the reaction.
4.19 A first order reaction takes $40 \mathrm{~min}$ for $30 \%$ decomposition. Calculate $t_{1 / 2}$.
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Answer
For a first order reaction,
$ \begin{aligned} t & =\frac{2.303}{k} \log \frac{[\mathrm{R}]_{0}}{[\mathrm{R}]} \\ k & =\frac{2.303}{40 \mathrm{~min}} \log \frac{100}{100-30} \\ & =\frac{2.303}{40 \mathrm{~min}} \log \frac{10}{7} \\ & =8.918 \times 10^{-3} \mathrm{~min}^{-1} \end{aligned} $
Therefore, $t_{1 / 2}$ of the decomposition reaction is
$ \begin{aligned} t_{1 / 2} & =\frac{0.693}{k} \\ & =\frac{0.693}{8.918 \times 10^{-3}} \mathrm{~min} \end{aligned} $
$=77.7 \mathrm{~min}$ (approximately)
4.20 For the decomposition of azoisopropane to hexane and nitrogen at 543 $\mathrm{K}$, the following data are obtained.
$t$ (sec) | $\mathrm{P}(\mathrm{mm}$ of $\mathrm{Hg}$ ) |
---|---|
0 | 35.0 |
360 | 54.0 |
720 | 63.0 |
Calculate the rate constant.
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Answer
The decomposition of azoisopropane to hexane and nitrogen at $543 \mathrm{~K}$ is represented by the following equation.
$\mathrm{(CH_3)_2CHN=NCH(CH_3) }$ | $\mathrm{N_2(\mathrm{~g})}+\mathrm{C_6} \mathrm{H_14(\mathrm{~g})}$ | ||
---|---|---|---|
At $t=0$ | $\mathrm{P_0}$ | 0 | 0 |
At $t=t$ | $\mathrm{P_0}-p$ | $p$ | $p$ |
After time, $t$, total pressure, $\mathrm{P_t}=\left(\mathrm{P_0}-p\right)+p+p$
$\Rightarrow \mathrm{P_t}=\mathrm{P_0}+p$
$\Rightarrow p=\mathrm{P_\mathrm{t}}-\mathrm{P_0}$
Therefore, $\mathrm{P_\mathrm{o}}-p=\mathrm{P_\mathrm{o}}-\left(\mathrm{P_\mathrm{t}}-\mathrm{P_\mathrm{o}}\right)$
$=2 \mathrm{P_0}-\mathrm{P_t}$
For a first order reaction,
$k=\frac{2.303}{t} \log \frac{\mathrm{P_0}}{\mathrm{P_0}-p}$
$=\frac{2.303}{t} \log \frac{\mathrm{P_0}}{2 \mathrm{P_0}-\mathrm{P_t}}$
When $t=360 \mathrm{~s}, \quad k=\frac{2.303}{360 \mathrm{~s}} \log \frac{35.0}{2 \times 35.0-54.0}$
$=2.175 \times 10^{-3} \mathrm{~S}^{-1}$
When $t=720 \mathrm{~s}, \quad k=\frac{2.303}{720 \mathrm{~s}} \log \frac{35.0}{2 \times 35.0-63.0}$
$=2.235 \times 10^{-3} \mathrm{~S}^{-1}$
Hence, the average value of rate constant is
$k=\frac{\left(2.175 \times 10^{-3}\right)+\left(2.235 \times 10^{-3}\right)}{2} \mathrm{~s}^{-1}$
$=2.21 \times 10^{-3} \mathrm{~S}^{-1}$
Note: There is a slight variation in this answer and the one given in the NCERT textbook.
4.21 The following data were obtained during the first order thermal decomposition of $\mathrm{SO_2} \mathrm{Cl_2}$ at a constant volume. $ \mathrm{SO_2} \mathrm{Cl_2}(\mathrm{~g}) \rightarrow \mathrm{SO_2}(\mathrm{~g})+\mathrm{Cl_2}(\mathrm{~g}) $
Experiment | Time $/ \mathrm{s}^{-1}$ | Total pressure $/$ atm |
---|---|---|
1 | 0 | 0.5 |
2 | 100 | 0.6 |
Calculate the rate of the reaction when total pressure is $0.65 \mathrm{~atm}$.
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Answer
The thermal decomposition of $\mathrm{SO_2} \mathrm{Cl_2}$ at a constant volume is represented by the following equation.
$\begin{array}{lllcc} & \mathrm{SO_2} \mathrm{Cl_{2(g)}} & \longrightarrow & \mathrm{SO_{2(g)}} &+\mathrm{Cl_{2(g)}} \\ \text { At } t=0 & \mathrm{P_0} & & 0 & 0 \\ \text { At } t=t & \mathrm{P_0}-\mathrm{p} & & \mathrm{p} & \mathrm{p} \end{array}$
After time, $t$, total pressure, $\mathrm{P_t}=\left(\mathrm{P_0}-p\right)+p+p$
$\Rightarrow \mathrm{P_t}=\mathrm{P_0}+p$
$\Rightarrow p=\mathrm{P_\mathrm{t}}-\mathrm{P_0}$
Therefore, $\mathrm{P_\mathrm{o}}-p=\mathrm{P_\mathrm{o}}-\left(\mathrm{P_\mathrm{t}}-\mathrm{P_\mathrm{o}}\right)$
$=2 P_{0}-P_{t}$
For a first order reaction,
$\begin{aligned} k & =\frac{2.303}{t} \log \frac{\mathrm{P_0}}{\mathrm{P_0}-p} \\ & =\frac{2.303}{t} \log \frac{\mathrm{P_0}}{2 \mathrm{P_0}-\mathrm{P_t}}\end{aligned}$
When $t=100 \mathrm{~s}, \quad k=\frac{2.303}{100 \mathrm{~s}} \log \frac{0.5}{2 \times 0.5-0.6}$
$=2.231 \times 10^{-3} \mathrm{~S}^{-1}$
When $\mathrm{P_t}=0.65 \mathrm{~atm}$,
$\mathrm{P_0}+p=0.65$
$\Rightarrow p=0.65-P_{0}$
$=0.65-0.5$
$=0.15 \mathrm{~atm}$
Therefore, when the total pressure is $0.65 \mathrm{~atm}$, pressure of $\mathrm{SOCl_2}$ is
$p_{\mathrm{SOCl_2}}=\mathrm{P_0}-\mathrm{p}$
$=0.5-0.15$
$=0.35 \mathrm{~atm}$
Therefore, the rate of equation, when total pressure is $0.65 \mathrm{~atm}$, is given by,
Rate $=k\left({ }^{p_{\mathrm{SOCl_2}}}\right)$
$=\left(2.23 \times 10^{-3} \mathrm{~S}^{-1}\right)(0.35 \mathrm{~atm})$
$=7.8 \times 10^{-4} \mathrm{~atm} \mathrm{~s} \mathrm{~s}^{-1}$
4.22 The rate constant for the decomposition of $\mathrm{N_2} \mathrm{O_5}$ at various temperatures is given below:
$T /{ }^{\circ} \mathrm{C}$ | 0 | 20 | 40 | 60 | 80 |
---|---|---|---|---|---|
$10^{5} \times \mathrm{k} / \mathrm{s}^{-1}$ | 0.0787 | 1.70 | 25.7 | 178 | 2140 |
Draw a graph between $\ln k$ and $1 / T$ and calculate the values of $A$ and $E_{\mathrm{a}}$. Predict the rate constant at $30^{\circ}$ and $50^{\circ} \mathrm{C}$.
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Answer
From the given data, we obtain
$T /{ }^{\circ} \mathrm{C}$ | 0 | 20 | 40 | 60 | 80 |
---|---|---|---|---|---|
$T / \mathrm{K}$ | 273 | 293 | 313 | 333 | 353 |
$\frac{1}{T} / \mathrm{K}^{-1}$ | $3.66 \times 10^{-3}$ | $3.41 \times 10^{-3}$ | $3.19 \times 10^{-3}$ | $3.0 \times 10^{-3}$ | $2.83 \times 10^{-3}$ |
$10^{5} \times k / \mathrm{s}^{-1}$ | 0.0787 | 1.70 | 25.7 | 178 | 2140 |
$\ln k$ | -7.147 | -4.075 | -1.359 | -0.577 | 3.063 |
Slope of the line,
$$ \frac{y_{2}-y_{1}}{x_{2}-x_{1}}=-12.301 \mathrm{~K} $$
According to Arrhenius equation,
Slope $=-\frac{E_{a}}{\mathrm{R}}$
$\Rightarrow E_{a}=-$ Slope $\times \mathrm{R}$
$=-(-12.301 \mathrm{~K}) \times\left(8.314 \mathrm{~J} \mathrm{~K}^{-1} \mathrm{~mol}^{-1}\right)$
$=102.27 \mathrm{~kJ} \mathrm{~mol}^{-1}$
Again,
$\ln k=\ln A-\frac{E_{a}}{\mathrm{R} T}$
$\ln A=\ln k+\frac{E_{a}}{\mathrm{R} T}$
When $T=273 \mathrm{~K}$,
$\ln k=-7.147$
Then, $\ln A=-7.147+\frac{102.27 \times 10^{3}}{8.314 \times 273}$
$$ =37.911 $$
Therefore, $A=2.91 \times 10^{6}$
When $T=30+273 \mathrm{~K}=303 \mathrm{~K}$,
$\frac{1}{T}=0.0033 \mathrm{~K}=3.3 \times 10^{-3} \mathrm{~K}$
Then,
$$ \text { at } \frac{1}{T}=3.3 \times 10^{-3} \mathrm{~K} \text {, } $$
$\ln k=-2.8$
Therefore, $k=6.08 \times 10^{-2} \mathrm{~s}^{-1}$
Again, when $T=50+273 \mathrm{~K}=323 \mathrm{~K}$,
4.23 The rate constant for the decomposition of hydrocarbons is $2.418 \times 10^{-5} \mathrm{~s}^{-1}$ at $546 \mathrm{~K}$. If the energy of activation is $179.9 \mathrm{~kJ} / \mathrm{mol}$, what will be the value of pre-exponential factor.
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Answer
$k=2.418 \times 10^{-5} \mathrm{~S}^{-1}$
$T=546 \mathrm{~K}$ $E_{\mathrm{a}}=179.9 \mathrm{~kJ} \mathrm{~mol}^{-1}=179.9 \times 10^{3} \mathrm{~J} \mathrm{~mol}^{-1}$
According to the Arrhenius equation,
$k=\mathrm{Ae}^{-E_{\mathrm{a}} / \mathrm{R} T}$
$\Rightarrow \ln k=\ln \mathrm{A}-\frac{E_{a}}{\mathrm{R} T}$
$\Rightarrow \log k=\log \mathrm{A}-\frac{E_{a}}{2.303 \mathrm{R} T}$
$\Rightarrow \log \mathrm{A}=\log k+\frac{E_{a}}{2.303 \mathrm{R} T}$
$=\log \left(2.418 \times 10^{-5} \mathrm{~s}^{-1}\right)+\frac{179.9 \times 10^{3} \mathrm{~J} \mathrm{~mol}^{-1}}{2.303 \times 8.314 \mathrm{Jk}^{-1} \mathrm{~mol}^{-1} \times 546 \mathrm{~K}}$
$=(0.3835-5)+17.2082$
$=12.5917$
Therefore, $\mathrm{A}=\operatorname{antilog}$ (12.5917)
$=3.9 \times 10^{12} \mathrm{~S}^{-1}$ (approximately)
4.24 Consider a certain reaction $\mathrm{A} \rightarrow$ Products with $k=2.0 \times 10^{-2} \mathrm{~s}^{-1}$. Calculate the concentration of $A$ remaining after $100 \mathrm{~s}$ if the initial concentration of $A$ is $1.0 \mathrm{~mol} \mathrm{~L}^{-1}$.
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Answer
$k=2.0 \times 10^{-2} \mathrm{~s}^{-1}$
$T=100 \mathrm{~s}$
$[A]_{0}=1.0 \mathrm{moL}^{-1}$
Sincethe unit of $\mathrm{kis} \mathrm{s}^{-1}$, the given reaction is a first order reaction.
Therefore, $ k=\frac{2.303}{t} \log \frac{[\mathrm{A}]_{0}}{[\mathrm{~A}]} $
$\Rightarrow 2.0 \times 10^{-2} \mathrm{~s}^{-1}=\frac{2.303}{100 \mathrm{~s}} \log \frac{1.0}{[\mathrm{~A}]}$
$\Rightarrow 2.0 \times 10^{-2} \mathrm{~s}^{-1}=\frac{2.303}{100 \mathrm{~s}}(-\log [\mathrm{A}])$
$\Rightarrow-\log [\mathrm{A}]=\frac{2.0 \times 10^{-2} \times 100}{2.303}$
$\Rightarrow[\mathrm{A}]=\operatorname{anti} \log \left(-\frac{2.0 \times 10^{-2} \times 100}{2.303}\right)$
$=0.135 \mathrm{~mol} \mathrm{~L}^{-1}$ (approximately)
Hence, the remaining concentration of $A$ is $0.135 \mathrm{~mol} \mathrm{~L}^{-1}$.
4.25 Sucrose decomposes in acid solution into glucose and fructose according to the first order rate law, with $t_{1 / 2}=3.00$ hours. What fraction of sample of sucrose remains after 8 hours ?
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Answer
For a first order reaction,
$k=\frac{2.303}{t} \log \frac{[\mathrm{R}]_{0}}{[\mathrm{R}]}$
It is given that, $t_{1 / 2}=3.00$ hours
$ k=\frac{0.693}{t_{1 / 2}} $
Therefore,
$=\frac{0.693}{3} \mathrm{~h}^{-1}$
$=0.231 \mathrm{~h}^{-1}$
Then, $0.231 \mathrm{~h}^{-1}$
$ =\frac{2.303}{8 \mathrm{~h}} \log \frac{[\mathrm{R}]_{0}}{[\mathrm{R}]} $
$\Rightarrow \log \frac{[\mathrm{R}]_{0}}{[\mathrm{R}]}=\frac{0.231 \mathrm{~h}^{-1} \times 8 \mathrm{~h}}{2.303}$
$\Rightarrow \frac{[R]_{0}}{[R]}=\operatorname{antilog}(0.8024)$
$\Rightarrow \frac{[\mathrm{R}]_{0}}{[\mathrm{R}]}=6.3445$
$\Rightarrow \frac{[\mathrm{R}]}{[\mathrm{R}]_{0}}=0.1576$ (approx)
$ =0.158 $
Hence, the fraction of sample of sucrose that remains after 8 hours is 0.158 .
4.26 The decomposition of hydrocarbon follows the equation Calculate $E_{\text {a }}$. $ k=\left(4.5 \times 10^{11} \mathrm{~s}^{-1}\right) \mathrm{e}^{-28000 K / T} $
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Answer
The given equation is
$k=\left(4.5 \times 10^{11} \mathrm{~s}^{-1}\right) \mathrm{e}^{-28000 \mathrm{KT}(\mathrm{i})}$
Arrhenius equation is given by,
$k=\mathrm{Ae}^{-E_{\alpha} / \mathrm{R} T}$
From equation (i) and (ii), we obtain
$\frac{E_{a}}{\mathrm{R} T}=\frac{28000 \mathrm{~K}}{T}$
$\Rightarrow E_{a}=\mathrm{R} \times 28000 \mathrm{~K}$
$=8.314 \mathrm{~J} \mathrm{~K}^{-1} \mathrm{~mol}^{-1} \times 28000 \mathrm{~K}$
$=232792 \mathrm{~J} \mathrm{~mol}^{-1}$
$=232.792 \mathrm{~kJ} \mathrm{~mol}^{-1}$
4.27 The rate constant for the first order decomposition of $\mathrm{H_2} \mathrm{O_2}$ is given by the following equation: $ \log k=14.34-1.25 \times 10^{4} \mathrm{~K} / T $ Calculate $E_{\mathrm{a}}$ for this reaction and at what temperature will its half-period be 256 minutes?
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Answer
Arrhenius equation is given by,
$k=\mathrm{Ae}^{-E_{\alpha} / \mathrm{R} T}$
$\Rightarrow \ln k=\ln \mathrm{A}-\frac{E_{a}}{\mathrm{R} T}$
$\Rightarrow \ln k=\log \mathrm{A}-\frac{E_{a}}{\mathrm{R} T}$
$\Rightarrow \log k=\log \mathrm{A}-\frac{E_{a}}{2.303 \mathrm{R} T} \quad \quad \quad \text{(i)}$
The given equation is
$\log k=14.34-1.25 \times 10^{4} \mathrm{~K} / T\quad \quad \quad \text{(ii)}$
From equation (i) and (ii), we obtain
$\frac{E_{a}}{2.303 \mathrm{R} T}=\frac{1.25 \times 10^{4} \mathrm{~K}}{T}$
$\Rightarrow E_{a}=1.25 \times 10^{4} \mathrm{~K} \times 2.303 \times \mathrm{R}$
$=1.25 \times 10^{4} \mathrm{~K} \times 2.303 \times 8.314 \mathrm{~J} \mathrm{~K}^{-1} \mathrm{~mol}^{-1}$
$=239339.3 \mathrm{~J} \mathrm{~mol} \cdot 1$ (approximately)
$=239.34 \mathrm{~kJ} \mathrm{~mol}^{-1}$
Also, when $t_{1 / 2}=256$ minutes,
$ \begin{aligned} k & =\frac{0.693}{t_{1 / 2}} \\ & =\frac{0.693}{256} \end{aligned} $
$=2.707 \times 10^{-3} \mathrm{~min}^{-1}$
$=4.51 \times 10^{-5} \mathrm{~S}^{-1}$
It is also given that, $\log k=14.34-1.25 \times 10^{4} \mathrm{~K} / T$
$\Rightarrow \log \left(4.51 \times 10^{-5}\right)=14.34-\frac{1.25 \times 10^{4} \mathrm{~K}}{T}$
$\Rightarrow \log (0.654-05)=14.34-\frac{1.25 \times 10^{4} \mathrm{~K}}{T}$
$\Rightarrow \frac{1.25 \times 10^{4} \mathrm{~K}}{T}=18.686$
$\Rightarrow T=\frac{1.25 \times 10^{4} \mathrm{~K}}{18.686}$
$=668.95 \mathrm{~K}$
$=669 \mathrm{~K}$ (approximately)
4.28 The decomposition of A into product has value of $k$ as $4.5 \times 10^{3} \mathrm{~s}^{-1}$ at $10^{\circ} \mathrm{C}$ and energy of activation $60 \mathrm{~kJ} \mathrm{~mol}^{-1}$. At what temperature would $k$ be $1.5 \times 10^{4} \mathrm{~s}^{-1}$ ?
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Answer
From Arrhenius equation, we obtain
$\log \frac{k_{2}}{k_{1}}=\frac{E_{a}}{2.303 \mathrm{R}}\left(\frac{T_{2}-T_{1}}{T_{1} T_{2}}\right)$
Also, $k_{1}=4.5 \times 10^{3} \mathrm{~s}^{-1}$
$T_{1}=273+10=283 \mathrm{~K}$
$k_{2}=1.5 \times 10^{4} \mathrm{~s}^{-1}$
$E_{\mathrm{a}}=60 \mathrm{~kJ} \mathrm{~mol}^{-1}=6.0 \times 10^{4} \mathrm{~J} \mathrm{~mol}^{-1}$
Then,
$\log \frac{1.5 \times 10^{4}}{4.5 \times 10^{3}}=\frac{6.0 \times 10^{4} \mathrm{~J} \mathrm{~mol}^{-1}}{2.303 \times 8.314 \mathrm{~J} \mathrm{~K}^{-1} \mathrm{~mol}^{-1}}\left(\frac{T_{2}-283}{283 T_{2}}\right)$
$\Rightarrow 0.5229=3133.627\left(\frac{T_{2}-283}{283 T_{2}}\right)$
$\Rightarrow \frac{0.5229 \times 283 T_{2}}{3133.627}=T_{2}-283$
$\Rightarrow 0.0472 T_{2}=T_{2}-283$
$\Rightarrow 0.9528 T_{2}=283$
$\Rightarrow T_{2}=297.019 \mathrm{~K}$ (approximately)
$=297 \mathrm{~K}$ $=24^{\circ} \mathrm{C}$
Hence, $k$ would be $1.5 \times 10^{4} \mathrm{~s}^{-1}$ at $24^{\circ} \mathrm{C}$.
Note: There is a slight variation in this answer and the one given in the NCERT textbook.
4.29 The time required for $10 \%$ completion of a first order reaction at $298 \mathrm{~K}$ is equal to that required for its $25 \%$ completion at $308 \mathrm{~K}$. If the value of $A$ is $4 \times 10^{10} \mathrm{~s}^{-1}$. Calculate $k$ at $318 \mathrm{~K}$ and $E_{\mathrm{a}}$.
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Answer
For a first order reaction,
$t=\frac{2.303}{k} \log \frac{a}{a-x}$
At $298 \mathrm{~K}, \quad t=\frac{2.303}{k} \log \frac{100}{90}$
$=\frac{0.1054}{k}$
At $308 \mathrm{~K}, \quad t^{\prime}=\frac{2.303}{k^{\prime}} \log \frac{100}{75}$
$=\frac{2.2877}{k^{\prime}}$
According to the question,
$t=t^{\prime}$
$\Rightarrow \frac{0.1054}{k}=\frac{0.2877}{k^{\prime}}$
$\Rightarrow \frac{k^{\prime}}{k}=2.7296$
From Arrhenius equation, we obtain
$$ \begin{aligned} & \log \frac{k^{\prime}}{k}=\frac{E_{a}}{2.303 \mathrm{R}}\left(\frac{T^{\prime}-T}{T T^{\prime}}\right) \\ & \log (2.7296)=\frac{E_{a}}{2.303 \times 8.314}\left(\frac{308-298}{298 \times 308}\right) \\ & E_{a}=\frac{2.303 \times 8.314 \times 298 \times 308 \times \log (2.7296)}{308-298} \\ & \quad=76640.096 \mathrm{~J} \mathrm{~mol}^{-1} \\ & \quad=76.64 \mathrm{~kJ} \mathrm{~mol}^{-1} \end{aligned} $$
To calculate $k$ at $318 \mathrm{~K}$,
It is given that, $A=4 \times 10^{10} \mathrm{~s}^{-1}, T=318 \mathrm{~K}$
Again, from Arrhenius equation, we obtain
$$ \begin{aligned} \log k & =\log A-\frac{E_{a}}{2.303 \mathrm{R} T} \\ & =\log \left(4 \times 10^{10}\right)-\frac{76.64 \times 10^{3}}{2.303 \times 8.314 \times 318} \\ & =(0.6021+10)-12.5876 \\ & =-1.9855 \end{aligned} $$
Therefore, $k=\operatorname{Antilog}(-1.9855)$
$$ =1.034 \times 10^{-2} \mathrm{~s}^{-1} $$
4.30 The rate of a reaction quadruples when the temperature changes from $293 \mathrm{~K}$ to $313 \mathrm{~K}$. Calculate the energy of activation of the reaction assuming that it does not change with temperature.
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Answer
From Arrhenius equation, we obtain $\log \frac{k_{2}}{k_{1}}=\frac{E_{a}}{2.303 \mathrm{R}}\left(\frac{T_{2}-T_{1}}{T_{1} T_{2}}\right)$
It is given that, $k_{2}=4 k_{1}$
$T_{1}=293 \mathrm{~K}$
$T_{2}=313 \mathrm{~K}$
Therefore, $\log \frac{4 k_{1}}{k_{2}}=\frac{E_{a}}{2.303 \times 8.314}\left(\frac{313-293}{293 \times 313}\right)$
$\Rightarrow 0.6021=\frac{20 \times E_{a}}{2.303 \times 8.314 \times 293 \times 313}$
$\Rightarrow E_{\alpha}=\frac{0.6021 \times 2.303 \times 8.314 \times 293 \times 313}{20}$
$$ =52863.33 \mathrm{~J} \mathrm{~mol}^{-1} $$
$$ =52.86 \mathrm{~kJ} \mathrm{~mol}^{-1} $$
Hence, the required energy of activation is $52.86 \mathrm{kJmol}^{-1}$.