Chemistry · Ch 3 — Chemical Kinetics
Half-life of a Reaction
Half-life of a Reaction
Defining half-life
The half-life of a reaction, written , is the time taken for the concentration of a reactant to fall to exactly one-half of its initial value. It is a convenient single number for comparing how fast different reactions (or the same reaction under different conditions) run, without having to quote a full concentration-vs-time curve.
Half-life of a zero order reaction
For a zero order reaction the rate constant is related to concentration and time by
At , by definition . Substituting,
which rearranges to
So for a zero order reaction, is directly proportional to the initial concentration of the reactant and inversely proportional to the rate constant — starting with more reactant simply takes proportionally longer to consume half of it.
Half-life of a first order reaction
For a first order reaction, start from the base-10 rate-constant expression
Again set and :
Solving for and using ,
Comparing the two orders
For a zero order reaction, — halving the amount of reactant present halves the time needed to consume the next half.
For a first order reaction, is a constant, completely independent of — it depends only on . Equal further intervals always halve whatever concentration remains, which is why first order half-life can be calculated from alone (and vice versa), and why measuring a constant half-life across different starting concentrations is itself experimental evidence that a reaction is first order.
The differential and integrated rate laws, straight-line plots, half-life expressions, and units of for both zero and first order reactions are collected together for quick reference in the accompanying summary table.
| Order | Reaction type | Differential rate law | Integrated rate law | Straight line plot | Half-life | Units of k |
|---|---|---|---|---|---|---|
| 0 | R → P | vs | conc time⁻¹ or mol L⁻¹ s⁻¹ |
When a higher-order reaction behaves like first order
The apparent order of a reaction can shift under particular experimental conditions, even though its true order (fixed by how many species genuinely control the rate) does not change. The hydrolysis of ethyl acetate is a good illustration:
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