Decay and radiation
Key idea: Atomic structure, nuclide notation, random decay, radiation properties, background radiation, half-life, applications and hazards.
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The core idea
Syllabus and review details
- K326 / K327 Science Physics componentK326 / K327 · 2027Checked against the syllabus · partial topic coverageRadioactivity topic 16(a)–(h), PDF pages 23–24
1. Definition
Radioactive decay is a change in an unstable nucleus that emits ionising radiation.
The decay is spontaneous because it occurs without an external trigger. It is random because we cannot predict when one particular unstable nucleus will decay, although a large sample shows a predictable overall pattern.
By the end of this lesson, you can distinguish those two ideas and compare alpha, beta-minus and gamma radiation using physical evidence. A radioactive source is material containing unstable nuclei; radiation is what those nuclei emit. Radiation reaching a detector is not the same thing as radioactive material moving into it.
2. Key ideas
These are the usual comparisons for typical alpha, beta-minus and gamma emissions in common shielding materials. Penetration also depends on emission energy and the absorber’s material and thickness.
| Radiation | Nature | Relative ionising effect | Relative penetration |
|---|---|---|---|
| Alpha, α | Helium nucleus: two protons and two neutrons | High | Low |
| Beta-minus, β⁻ | Fast-moving electron emitted from the nucleus | Medium | Medium |
| Gamma, γ | Electromagnetic radiation | Low | High |
- Strong ionisation means the radiation transfers energy to matter readily and can remove electrons from atoms.
- Alpha loses its energy over a short distance, so paper or a few centimetres of air absorbs it.
- Beta-minus travels further; thin aluminium can absorb it.
- Gamma is the most penetrating of the three. Thick lead or concrete reduces its intensity rather than guaranteeing that every ray is stopped.
3. Detailed explanation
Random does not mean “without a pattern”
Imagine observing one unstable nucleus. No measurement lets you name its exact decay time. That is the random part. If you observe a very large number of identical unstable nuclei, the fraction that decays over a fixed interval becomes predictable. Random individual events can therefore produce a smooth overall decay trend.
Spontaneous does not mean “instantaneous”
A spontaneous decay needs no collision, heating or switch. It may still take a very long time before a particular nucleus decays. Temperature and pressure do not control ordinary nuclear decay in the way they can control a chemical reaction.
Why ionisation and penetration differ
Alpha particles are relatively massive and carry charge + 2. They interact strongly with nearby matter, producing many ionisations and losing energy quickly. Gamma radiation has no charge and interacts less often, so it usually travels further before transferring its energy. This explains why high ionising effect accompanies low penetration in this comparison.
Hazard depends on where the source is
Outside the body, alpha radiation is usually stopped by the outer dead layer of skin. Inside the body, an alpha-emitting substance can irradiate living tissue at close range and cause concentrated ionisation. Gamma can reach internal tissue from an external source because it penetrates skin more readily. “Most dangerous” is therefore incomplete unless exposure route, activity, time, distance and shielding are specified.
4. Common mistakes
- Saying random means the number of decays is always unpredictable. Individual times are unpredictable; a large sample has a predictable statistical trend.
- Saying spontaneous means every nucleus decays immediately. It means no external trigger is required.
- Calling gamma a particle with mass and charge. At this level, describe it as electromagnetic radiation with no charge.
- Equating penetration with ionising effect. Alpha is highly ionising but weakly penetrating; gamma is the reverse in this comparison.
- Saying lead stops all gamma radiation. State that suitable thickness reduces its intensity.
5. Exam tips
- When asked to compare, use the same property for all three emissions.
- Give both halves of the decay description: random and spontaneous, with distinct meanings.
- Explain absorption using energy transfer and ionisation, not by saying radiation “runs out”.
- For a hazard question, identify whether the source is outside or inside the body before judging risk.
6. Worked examples
Modelled example 1
Identifying radiation from an absorber test
Problem
Radiation passes through paper but its detector count falls close to background when thin aluminium is inserted. Identify the radiation and justify the answer.
Study the worked solution
Use the paper result
Method
Rule out alpha.Reason
Alpha is stopped by paper.Working
The radiation is more penetrating than alpha.
Use the aluminium result
Method
Match strong absorption by thin aluminium to beta-minus.
Reason
Gamma is substantially more penetrating and normally requires thick, dense shielding for a comparable reduction.
Working
The evidence identifies beta-minus radiation.
Common misconception 2
Explaining an internal alpha hazard
Learner claim
“Alpha cannot penetrate skin, so an alpha source is never a serious hazard.” Explain why this fails for an inhaled source.
Try this before viewing the solution
View solution step by step
Change the boundary
Method
Place the inhaled source inside the body.Reason
Alpha no longer needs to pass through skin to reach living cells.
Working
Low penetration does not protect nearby internal tissue.
Combine range and ionisation
Method
State that alpha is strongly ionising over a short distance.
Reason
It deposits energy densely in nearby tissue and can damage cells.
Working
An internal alpha source can be especially harmful.
7. Mind stretchers
Mind stretcher 1: Interpreting fluctuating readingsExtension
A detector gives 84, 77, 91, 80 and 86 counts in equal time intervals without any change to the apparatus. Does the variation prove the experiment is faulty?
Show answer
No. Radioactive decay is random, so repeated counts fluctuate. The experiment should use a longer counting time or repeated readings and compare averages. A fault is possible, but fluctuation alone does not prove one.
Mind stretcher 2: Correcting a shielding claimExtension
Rewrite “A lead sheet makes gamma radiation safe” as a scientifically defensible statement.
Show answer
A suitable thickness of lead reduces gamma intensity and therefore reduces exposure; the remaining risk also depends on source activity, exposure time and distance.
Distinguish timing, trigger and emission
Two unchanged observations contain different numbers of decays in equal intervals. A learner concludes that the nuclei needed different external triggers. Choose the interpretation that separates random timing from spontaneous decay, then identify the beta-minus emission.
Apply penetration evidence independently
In an illustrative comparison with the same source–detector spacing and counting duration, radiation remains detectable above background through paper and thin aluminium, but thick lead reduces its count substantially. For the typical alpha, beta-minus and gamma emissions in this comparison, which radiation fits? What should “reduced” mean?
Repair the source–radiation confusion
A sealed source remains behind its enclosure while emitted gamma radiation reaches a detector. A learner says, “Radioactive material must have moved to the detector because it counted radiation.” Select what actually travelled and what the observation establishes.
Practice and next step
Use the Radioactivity topic check for focused practice and feedback. Then continue to Background radiation and half-life.
Continue with the next resource in this course.
Course and syllabus information
- Course
- SEC G3 Combined Science Physics component
- Edition
- SEC G3 Combined Science Physics component 2027