This MCQ module is based on: Rate of Reaction
Rate of Reaction
This assessment will be based on: Rate of Reaction
Upload images, PDFs, or Word documents to include their content in assessment generation.
Rate of Reaction
3.1 What Is Chemical Kinetics?
Chemical reactions happen at vastly different speeds. Some reactions, such as the combustion of hydrogen in oxygen or the precipitation of silver chloride, are over in a fraction of a second. Others, like the rusting of iron or the conversion of diamond into graphite, are so slow that they appear not to happen at all. Between these extremes lie reactions of moderate speed — neutralisation of an acid by a base or the inversion of cane sugar.
Chemical kinetics is the branch of chemistry which deals with the study of rates of chemical reactions, the factors affecting these rates, and the mechanism by which the reactions proceed.
3.2 Rate of a Chemical Reaction
The rate of a chemical reaction is defined as the change in the concentration of any one of the reactants or products in unit time. For a hypothetical reaction
if \([R]_1\) and \([P]_1\) are the concentrations of R and P at time \(t_1\), and \([R]_2\) and \([P]_2\) are the concentrations at time \(t_2\), then
The average rate of the reaction is
Square brackets denote molar concentration. The negative sign in front of \(\Delta[R]\) makes the rate positive (since \([R]\) decreases, \(\Delta[R]\) is negative).
Average Rate vs Instantaneous Rate
The average rate depends on the time interval over which it is measured. As the reaction proceeds, reactant concentration falls, so the rate keeps decreasing. To know the rate at a particular instant we shrink \(\Delta t \to 0\), giving the instantaneous rate:
Graphically, the instantaneous rate is the slope of the tangent drawn to the concentration-time curve at the chosen instant.
Rate Expression for a General Reaction
For a reaction with stoichiometric coefficients
concentrations change at different numerical speeds depending on the coefficients. To define a unique rate, we divide each rate by the coefficient:
\(\text{Rate} = -\dfrac{1}{2}\dfrac{d[N_2O_5]}{dt} = +\dfrac{1}{4}\dfrac{d[NO_2]}{dt} = +\dfrac{d[O_2]}{dt}\).
Units of Rate
Concentration is in mol L⁻¹ and time in seconds, so the unit of rate is mol L⁻¹ s⁻¹. For a gaseous reaction at constant volume the concentration of a gas is proportional to its partial pressure, and rate may be given in atm s⁻¹.
Sample Data: Hydrolysis of Butyl Chloride
The reaction \( C_4H_9Cl + H_2O \to C_4H_9OH + HCl \) was followed by measuring \([C_4H_9Cl]\) at intervals of 50 s. The average rate is computed for each interval.
| \([C_4H_9Cl]_{t_1}\) mol L⁻¹ | \([C_4H_9Cl]_{t_2}\) mol L⁻¹ | \(t_1\)/s | \(t_2\)/s | \(r_{\text{av}} \times 10^4\) / mol L⁻¹ s⁻¹ |
|---|---|---|---|---|
| 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 | 0.0170 | 700 | 800 | 0.40 |
Notice that the rate decreases as the reaction proceeds — a classic feature of most reactions, because reactant concentration is falling.
Interactive: Average Rate Calculator
Pick two concentrations of reactant R and the corresponding times to compute the average rate.
Average rate \(= -\dfrac{\Delta[R]}{\Delta t} =\) 2.00 × 10⁻⁴ mol L⁻¹ s⁻¹
From the concentration of butyl chloride remaining after various times, calculate the average rate between t = 50 s and t = 100 s.
\(\text{Average rate} = -\dfrac{\Delta[C_4H_9Cl]}{\Delta t} = -\dfrac{(0.0820 - 0.0905)}{100 - 50} = -\dfrac{-0.0085}{50}\)
\( = 1.7 \times 10^{-4}\) mol L⁻¹ s⁻¹.
The decomposition of \(N_2O_5\) in CCl₄ at 318 K has been studied by monitoring the concentration of \(N_2O_5\) in the solution. Initially, \([N_2O_5] = 2.33\) mol L⁻¹ and after 184 minutes it falls to \(2.08\) mol L⁻¹. Calculate the average rate during this interval in mol L⁻¹ s⁻¹.
\(\text{Average rate} = -\dfrac{1}{2}\dfrac{\Delta[N_2O_5]}{\Delta t}\) (note the stoichiometric coefficient 2).
\(= -\dfrac{1}{2} \cdot \dfrac{(2.08 - 2.33)}{184 \times 60} = \dfrac{0.125}{11040}\)
\( = 1.13 \times 10^{-5}\) mol L⁻¹ s⁻¹.
3.3 Factors Influencing the Rate of a Reaction
The rate of a chemical reaction depends on the experimental conditions under which it is studied. The principal factors are:
(i) Concentration of Reactants
By the law of mass action, the rate is proportional to a product of reactant concentrations raised to suitable powers. Increasing concentration usually increases rate.
(ii) Temperature
An increase in temperature accelerates almost every reaction. As a rough rule, the rate roughly doubles for every 10 K rise. The quantitative form is the Arrhenius equation studied later.
(iii) Catalyst
A catalyst alters the rate without itself being consumed by providing an alternative pathway with lower activation energy.
(iv) Surface Area (for heterogeneous systems)
Powdered solids react faster than lumps because of greater contact area. Coal dust burns explosively whereas a coal lump burns steadily.
(v) Pressure (for gaseous reactions)
Increasing pressure compresses gases, raises concentration, and speeds up the reaction.
Setup: Take three test tubes labelled A, B, C. Add 5 mL of 0.5 M, 0.25 M and 0.10 M sodium thiosulphate solutions respectively. Place a paper marked with a dark cross under each tube. Add 2 mL of 0.5 M HCl to each at the same time and start a stopwatch.
The cross disappears fastest in tube A (highest thiosulphate concentration) and slowest in tube C. The reaction is
\( Na_2S_2O_3 + 2\,HCl \to 2\,NaCl + SO_2 + S\downarrow + H_2O \)
The colloidal sulphur formed makes the solution opaque. Higher concentration of \(S_2O_3^{2-}\) means more frequent productive collisions per second → faster rate. This is a direct demonstration of the law of mass action.
Express the rate of the following reaction in terms of disappearance of hydrogen and formation of ammonia:
\( N_2(g) + 3\,H_2(g) \to 2\,NH_3(g) \).
The unique rate is
\(\text{Rate} = -\dfrac{d[N_2]}{dt} = -\dfrac{1}{3}\dfrac{d[H_2]}{dt} = +\dfrac{1}{2}\dfrac{d[NH_3]}{dt}\)
Therefore the rate of disappearance of \(H_2\) and rate of formation of \(NH_3\) are related as
\(-\dfrac{d[H_2]}{dt} = \dfrac{3}{2}\dfrac{d[NH_3]}{dt}\)
i.e. \(H_2\) is consumed 1.5 times faster than \(NH_3\) is produced.
Competency-Based Questions
Q1. The average rate of a reaction \( A \to B \) over the interval 0–10 s is reported as \(2.5 \times 10^{-3}\) mol L⁻¹ s⁻¹. Which of the following statements is most accurate? L4
Q2. For the reaction \(2\,SO_2 + O_2 \to 2\,SO_3\), if the rate of disappearance of \(O_2\) is \(2.5 \times 10^{-4}\) mol L⁻¹ s⁻¹, what is the rate of formation of \(SO_3\)? L3
Q3. (Short answer) Why does powdered limestone react faster with dilute HCl than a lump of the same mass? L2
Q4. (True/False) The unit of average rate of a reaction is always mol L⁻¹ s⁻¹. L2
Q5. (Long answer) A graph of [R] vs t is concave-up (rate decreasing). On the same axes, sketch [P] vs t and explain how the slope of the tangent at any instant relates to instantaneous rate of reaction. L5
Assertion–Reason Questions
(A) Both A and R true and R is correct explanation of A. (B) Both true but R is not correct explanation. (C) A true, R false. (D) A false, R true.
Assertion: A negative sign is used while writing the average rate in terms of reactant concentration.
Reason: The concentration of the reactant decreases with time, so \(\Delta[R]\) is negative; the negative sign makes the rate a positive quantity.
Assertion: The instantaneous rate of a reaction equals the average rate when \(\Delta t \to 0\).
Reason: The slope of the chord becomes the slope of the tangent in the limit.
Assertion: The rate of a reaction usually decreases with time.
Reason: The activation energy of a reaction increases as the reaction proceeds.
Frequently Asked Questions - Rate of Reaction
What is the main concept covered in Rate of Reaction?
How is Rate of Reaction useful in real-life or applied chemistry?
What are the key reactions students should memorize for Rate of Reaction?
How does this part connect to other parts of Chapter 3?
What types of CBSE board questions come from Rate of Reaction?
How can students use the interactive simulation effectively?
🎯 Practise Chemistry
Sit a full paper on what you have been studying, marked question by question.