Half-life and Radioactive Decay
Aligned to the AQA 8463 specification
- Topic
- Atomic structure
- Level
- Advanced
- Reading time
- 6 min
- Published
- 2 July 2026
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Key takeaways
- Half-life is the time it takes for the number of unstable nuclei in a sample to halve, or equally the time for the count-rate (or activity) from the sample to halve.
- Radioactive decay is random, so half-life describes the average behaviour of a large number of nuclei, not any single nucleus.
- To find a half-life from data, work out how long it takes for the count-rate or number of nuclei to fall to half its value.
- After n half-lives the fraction of the original nuclei still remaining is (1/2) to the power n.
- (Higher Tier) The net decline after n half-lives can be given as a ratio of the number of nuclei that have decayed to the number remaining.
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Key terms
- Half-life
- The time taken for the number of unstable nuclei in a sample, or the count-rate from it, to fall to half its original value.
- Count-rate
- The number of radioactive decays per second recorded by a detector such as a Geiger-Müller tube.
- Net decline
- The overall drop in the number of radioactive nuclei, often expressed as a ratio of decayed to remaining nuclei after a number of half-lives.
Frequently asked questions
Half-life is the time taken for the number of unstable nuclei in a sample to halve, which is the same as the time for the count-rate or activity to halve. It stays constant for a given isotope.
Find the starting count-rate or number of nuclei, then read off the time taken for it to fall to half that value. That time is one half-life. Checking a second halving confirms your answer.
One eighth. Each half-life halves the amount: after 1 half-life a half remains, after 2 a quarter, after 3 an eighth. In general the fraction remaining is (1/2) to the power of the number of half-lives.
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