Virginia Research Institute
Virginia Research Institute
Virtual Laboratory  ·  Built by E2 Innovations
← Back to Virtual Labs | Chemical Kinetics and Rate Laws
General Chemistry

Chemical Kinetics and Rate Laws

Chemistry is not only about what reacts, but how fast. Chemical kinetics measures reaction rates and uses them to uncover how a reaction proceeds. In this lab you will determine the order of a reaction and its rate constant from concentration data, and find the activation energy from how the rate constant changes with temperature.

Theory — Chemical Kinetics and Rate Laws

The rate of a reaction is how quickly a reactant is consumed or a product forms. It usually depends on concentration through a rate law.

1. Rate laws and reaction order

For a reactant A, the rate law is rate = k[A]n, where k is the rate constant and n is the order. The order is found from experiment, not from the balanced equation.

2. Integrated rate laws

Integrating the rate law gives concentration as a function of time, and each order has its own straight-line form:

Integrated rate laws Zero order: [A] = [A]0 − k t   (plot [A] vs t)
First order: ln[A] = ln[A]0 − k t   (plot ln[A] vs t)
Second order: 1/[A] = 1/[A]0 + k t   (plot 1/[A] vs t)
Whichever plot is a straight line reveals the order; its slope gives k.

3. Half-life

The half-life is the time for the concentration to fall by half. For a first-order reaction it does not depend on concentration:

First-order half-life t1/2 = 0.693 / k
Zero order: t1/2 = [A]0 / 2k  ·  Second order: t1/2 = 1 / (k[A]0)

4. Temperature and activation energy

Reactions speed up when heated because more collisions have enough energy to react. The rate constant follows the Arrhenius equation, and comparing k at two temperatures gives the activation energy:

Arrhenius (two-temperature form) ln(k2 / k1) = −(Ea / R)(1/T2 − 1/T1)
  R = 8.314 J/(mol K), T in kelvin
A catalyst speeds a reaction by lowering Ea, opening a new pathway.

A reaction usually proceeds through several elementary steps called the mechanism; the slowest step, the rate-determining step, controls the overall rate.

Apparatus

Kinetics measurements use tools to follow concentration over time and to control temperature. In the simulation these are modelled, but the readings match what each instrument would give.

Stopwatch
Times the reaction so concentration can be recorded at known intervals.
Spectrophotometer
Follows a coloured reactant or product by how much light it absorbs, giving concentration.
Thermostatic bath
Holds the reaction at a set temperature so rate can be studied against temperature.
Reaction flask
The vessel where reactants are mixed and the reaction is followed.
Rate plot
A graph of concentration against time whose linear form reveals the reaction order.
Ea lowered
Catalyst
A substance that speeds the reaction by lowering the activation energy without being consumed.

Instructions

Work through both tabs. Calculate first by hand, then press the button to compare.

Part A — Order, rate constant, and half-life

Part B — Activation energy

Simulation

Kinetics BenchCalculate first, then check against the simulation.

Team Questions

1. For a first-order reaction, the half-life:
2. The reaction order is determined from:
3. A catalyst increases the rate by:

Example Report

Worked example: a first-order rate constant and half-life

A first-order reaction starts at [A]0 = 1.00 M; after t = 30 s, [A] = 0.55 M.

k = ln([A]0/[A]) / t = ln(1.00/0.55) / 30 = 0.598 / 30 ≈ 0.0199 s-1.

Half-life: t1/2 = 0.693 / k = 0.693 / 0.0199 ≈ 34.8 s. Determining the order, extracting k from the data, and finding the half-life is the calculate-then-compare core of the lab.

Practice Questions

1. A first-order reaction has k = 0.10 s-1. Its half-life is about:
2. A plot of 1/[A] versus time is a straight line. The reaction is:
3. Raising the temperature increases the rate constant mainly because: