Every card in Atoms and radioactivity, Year 10: radioactive decay and the types of radiation
The whole deck, in order — so you can read it through before your child ever sees it.
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- The unit of activity, equal to one nucleus decaying each second
The becquerel (Bq)
HintIt is named after the French scientist who discovered radioactivity in 1896.
WhyActivity is how quickly the unstable nuclei in a source are decaying. A source in which 500 nuclei decay every second has an activity of 500 of these units. School sources are a few tens of thousands; medical ones can be many millions.
- What is the difference between the activity of a radioactive source and the count-rate measured from it?
Activity is the number of nuclei decaying each second in the source; count-rate is the number of decays a detector records each second
HintOne belongs to the radioactive material itself; the other depends on the instrument pointed at it.
WhyA detector such as a Geiger-Müller tube catches only the radiation that happens to travel into it, so the count-rate is always smaller than the activity. The two rise and fall together, though, which is why count-rate can be used to follow how the activity of a source changes.
- Why does an unstable nucleus give out radiation?
To become more stable
HintThe clue is in the word used to describe the nucleus beforehand.
WhySome atomic nuclei are unstable. By emitting radiation such a nucleus changes into a different, steadier arrangement. The process is called radioactive decay, and nothing outside the nucleus triggers it.
- Radioactive decay is a ____ process: there is no way to predict which nucleus will decay next, or when.
random
HintThe same word describes the roll of a fair dice.
WhyEach unstable nucleus has a certain chance of decaying in any given second, but nobody can say which one will go. Only for a very large number of nuclei does a pattern appear, and that pattern is what half-life describes.
- A detector placed near a radioactive source records 600 counts in 2 minutes. What is the count-rate in counts per second? (number only)
5
HintA rate 'per second' needs the time in seconds.
WhyCount-rate is how many decays a detector registers per second. Two minutes is 120 s, so the count-rate is 600 ÷ 120. Counting for a long time and dividing gives a steadier value than a single one-second reading, because decay is random.
- A particle made of two protons and two neutrons, the same as a helium nucleus
An alpha particle
HintIt is named after the first letter of the Greek alphabet.
WhyBeing large and carrying a charge, it is strongly ionising: it knocks electrons off many atoms as it passes. For the same reason it does not get far, travelling only a few centimetres in air and being stopped by a sheet of paper or by skin.
- What is a beta particle, and where in the atom does it come from?
A high-speed electron, ejected from the nucleus when a neutron turns into a proton
HintIt is a familiar particle, but it does not start out in the shells where you would expect to find it.
WhyThe nucleus contains no electrons to begin with. In beta decay a neutron changes into a proton, and the electron created in that change is thrown out at high speed. It is moderately ionising, travels about a metre in air and is stopped by a few millimetres of aluminium.
- Which is the most strongly ionising: alpha, beta or gamma radiation? (one word)
Alpha
HintThe most ionising kind is also the easiest to stop.
WhyIonising power and penetrating power run in opposite orders. The most ionising radiation gives up its energy quickly and is absorbed by a few centimetres of air; gamma is the least ionising and the most penetrating, with beta in between.
- Alpha radiation is stopped by a sheet of ____. Beta radiation is stopped by a few millimetres of ____. Gamma radiation is only reduced by thick ____ or concrete.
paper; aluminium; lead
HintThe absorbers get denser and tougher down the list: something you write on, a light metal used for foil and cans, then a very heavy metal.
WhyPenetrating power increases from alpha to beta to gamma. In air, alpha travels a few centimetres, beta about a metre, and gamma a very long way. These differences are what decide which kind of source suits a particular job.
- A factory checks the thickness of aluminium foil by passing radiation through the moving sheet to a detector. Why is a beta source chosen, and not an alpha or a gamma source?
Alpha would be stopped completely and gamma would pass through almost unchanged; only beta is partly absorbed
HintThe reading has to change when the foil gets a little thicker or thinner.
WhyIf the foil becomes thicker, less beta radiation reaches the detector and the count-rate falls; if it becomes thinner, the count-rate rises. Alpha would give a reading of zero whatever the thickness, and gamma would give nearly the same high reading whatever the thickness. Choosing the best source for a job is something AQA expects pupils to do.
1★ GCSE-PHYS-RAD-0001
2★ GCSE-PHYS-RAD-0002
3★ GCSE-PHYS-RAD-0003
4★ GCSE-PHYS-RAD-0004
5★ GCSE-PHYS-RAD-0005
6★ GCSE-PHYS-RAD-0006
7★ GCSE-PHYS-RAD-0007
8★ GCSE-PHYS-RAD-0008
9★ GCSE-PHYS-RAD-0009
10★ GCSE-PHYS-RAD-0010
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