Explain the order of reaction for complex reactions by giving examples.

Vedclass pdf generator app on play store
Vedclass iOS app on app store
(N/A) Complex reactions involving more than three molecules: Reactions involving more than three molecules in the stoichiometric equation must take place in more than one step. For example:
$KClO_{3} + 6 FeSO_{4} + 3 H_{2}SO_{4} \rightarrow KCl + 3 Fe_{2}(SO_{4})_{3} + 3 H_{2}O$
This reaction,which apparently seems to be of $10^{th}$ order based on stoichiometry,is actually a second-order reaction.
$(b)$ This indicates that the reaction occurs in several steps,but the slowest step determines the rate of reaction. The overall rate of the reaction is controlled by the slowest step,known as the rate-determining step.
Example: The decomposition of hydrogen peroxide catalyzed by iodide ion in an alkaline medium:
$2 H_{2}O_{2} \xrightarrow{I^{-} / \text{alkaline medium}} 2 H_{2}O + O_{2}$
The rate equation is found to be: $\text{Rate} = k[H_{2}O_{2}][I^{-}]$
Thus,the order with respect to $H_{2}O_{2}$ is $1$,and with respect to $I^{-}$ is $1$. The overall order of reaction is $(1 + 1) = 2$.
The decomposition of $H_{2}O_{2}$ occurs in two steps:
$(i)$ $H_{2}O_{2} + I^{-} \rightarrow H_{2}O + IO^{-} \quad (\text{slow step})$
$(ii)$ $H_{2}O_{2} + IO^{-} \rightarrow H_{2}O + I^{-} + O_{2} \quad (\text{fast step})$
Overall reaction: $2 H_{2}O_{2} \rightarrow 2 H_{2}O + O_{2}$
Both steps are bimolecular elementary reactions. The species $IO^{-}$ is an intermediate. The first step,being slow,is the rate-determining step. The order of the slowest step equals the molecularity of the slowest step.

Explore More

Similar Questions

Which of the following is an elementary reaction?

The given reaction $2NO + O_2 \to 2NO_2$ is an example of

Units of rate constant of first and zero order reactions in terms of molarity $M$ unit are respectively

The three experimental data for determining the differential rate of reaction $2 NO_{(g)} + Cl_{2(g)} \rightarrow 2 NOCl_{(g)}$ at a definite temperature are given below.
$(a)$ Calculate the order of reaction.
$(b)$ Calculate the value of the rate constant.

The results given in the below table were obtained during kinetic studies of the following reaction:
$2 A + B \longrightarrow C + D$
Experiment $[A] / mol \ L^{-1}$ $[B] / mol \ L^{-1}$ Initial rate / $mol \ L^{-1} \ min^{-1}$
$I$ $0.1$ $0.1$ $6.00 \times 10^{-3}$
$II$ $0.1$ $0.2$ $2.40 \times 10^{-2}$
$III$ $0.2$ $0.1$ $1.20 \times 10^{-2}$
$IV$ $X$ $0.2$ $7.20 \times 10^{-2}$
$V$ $0.3$ $Y$ $2.88 \times 10^{-1}$

$X$ and $Y$ in the given table are respectively :

Vedclass Products

For Students

Vedclass Test Series

Mock tests in real JEE/NEET style with performance analysis. 5-day free trial.

Start Free Trial
For Teachers

Exam Paper Generator

Generate Set A/B/C/D exam papers from 7.5L+ questions in 2 minutes. 3 chapters free.

Try Free
For Institutes

Online Exam Module

Live online exams with unlimited students, 360° analytics & white-label branding.

See Demo