IB Physics HL Topic 7 — Atomic, Nuclear & Particle Physics Paper 1 & 2 match the isotope to the job ~16 min read

Uses of Radioactivity

Radioactivity isn’t just a hazard to be shielded against — it’s a genuinely useful tool. We can date ancient bones, find leaks in buried pipes, sterilise surgical instruments, treat cancer, and even keep smoke detectors working. The trick to every application is the same: pick the right isotope for the job, matching its type of radiation and its half-life to exactly what the task needs.

📚 What you need to know

The two choices that decide everything

Every use of radioactivity comes down to answering two questions about the isotope:

Don’t memorise the applications as random facts — reason them out from these two properties. Ask “does the radiation need to travel far or stay contained?” and “does the source need to last years or fade in hours?” Once you frame it that way, you can work out the right isotope for a use you’ve never even seen before. That’s exactly what examiners test.
Two questions pick the isotope 1. Which radiation?α short range / contained β through thin material γ detect / penetrate 2. What half-life?Short medical tracers Long smoke detectors Very long rock datinganswer both → you’ve chosen the isotope
Every application is just these two questions answered together: the radiation type and the half-life that the task demands.

Carbon dating

Living things constantly take in carbon, including a steady trace of radioactive carbon-14. When an organism dies, it stops absorbing carbon, so its carbon-14 slowly decays away with a half-life of about 5730 years. By comparing how much carbon-14 is left with the amount in living tissue, we can work out how long ago the organism died.

Carbon-14 forms high in the atmosphere when cosmic rays free neutrons that strike nitrogen nuclei:

Formation of carbon-14 10n + 147N  →  146C + 11p

Why the 500–60 000 year window?

Carbon dating is reliable only for a certain age range:

Extra uncertainty creeps in because the amount of carbon-14 made in the atmosphere varies slightly with time and location.

Think of carbon-14 as a clock that only reads clearly in the “middle” of its life. Too early and the hands have barely moved; too late and they’ve nearly stopped. That readable middle stretch — roughly 500 to 60 000 years — is where the decay is fast enough to measure but not yet swamped by background.

Uranium-lead dating

For anything far older than living matter — like rocks, or the Earth itself — carbon-14 is useless. Instead we use uranium-238, which decays through a long chain ending in stable lead-206, with an enormous half-life of 4.5 billion years. As time passes, the ratio of lead-206 to uranium-238 in a rock steadily rises, and that ratio reveals the rock’s age. This method is how we know the Earth is billions, not millions, of years old.

Industrial uses

Detecting leaks in pipes

A gamma emitter is added to the fluid in a buried pipe. A detector moved along the ground picks up a spike in count rate exactly where fluid is leaking out. Gamma is essential here because it’s the only radiation penetrating enough to pass through metres of soil. The half-life must be short enough not to linger in the supply, but long enough to stay detectable during the survey. Sodium-24 (half-life ~15 hours) is a common choice.

Controlling thickness

To keep a rolled sheet (foil, paper, plastic, steel) at a constant thickness, a beta source sits on one side and a detector on the other. If the sheet thins, more beta gets through, so the rollers adjust. Beta is used because alpha would be blocked entirely and gamma would pass straight through unchanged — only beta responds to small thickness changes. A long half-life keeps the output steady.

Smoke detectors

A tiny alpha source (americium-241) ionises the air, letting a small current flow. When smoke enters, it absorbs the alpha particles, the current drops, and the alarm sounds. Alpha is ideal because it only travels a few centimetres, so it poses no hazard beyond the device. Americium-241’s 460-year half-life means the detector never needs its source replaced.

Medical uses

WE 1

Four radionuclides are available: A (americium-241, alpha), B (strontium-90, beta-minus), C (cobalt-60, beta-minus + gamma), D (fluorine-18, beta-plus). Choose the best one for (a) sterilising equipment sealed in plastic bags, and (b) monitoring the thickness of thin metal sheet.

(a) Sterilising sealed bags Alpha and low-energy beta would be absorbed by the bag, so we need penetrating radiation. C — cobalt-60 (gamma penetrates the packaging) (b) Thickness of thin metal Alpha is stopped by paper (too weak); gamma passes through all thicknesses (no response). B — strontium-90 (beta responds to small changes) Reason from penetrating power every time: sterilising needs to reach inside the bag (gamma), thickness gauging needs a radiation that changes when the sheet changes (beta).
WE 2

Explain why a radioactive tracer used in medical imaging should have a short half-life and emit gamma radiation.

Step 1 — why gamma? Gamma is the most penetrating, so it can escape the body and reach an external detector. Step 2 — why short half-life? A short half-life means the activity falls quickly, so the patient isn’t exposed for long — only a small sample is needed. Gamma to detect from outside; short half-life to limit exposure Two properties, two reasons. Gamma is about getting the signal out; short half-life is about patient safety. This “type + half-life” framing works for any medical-use question.

⚛ Choosing an isotope

  1. Does the radiation need to travel far or stay contained? Far → gamma; contained → alpha; respond-to-thickness → beta.
  2. How long must the source last? Years → long half-life; hours → short half-life.
  3. Dating once-living material? Carbon-14.
  4. Dating rocks? Uranium-238 → lead-206.
  5. Medical tracer? Short-half-life gamma emitter.

💡 Top tips

⚠ Common mistakes

Quick recap: Every use of radioactivity comes from matching the radiation type and half-life to the job. Carbon-14 dates once-living material (500–60 000 yr); uranium-lead dates rocks. Gamma suits leak detection, sterilising and tracers (penetrating); beta suits thickness gauging; alpha suits smoke detectors (contained). Medical tracers need short half-lives to limit dose.
Radioactive decay releases energy — that’s what powers a space probe or destroys a tumour. But where does that energy actually come from? The surprising answer is that a nucleus weighs slightly less than its separate parts, and that missing mass becomes energy. Next page: Mass Defect & Binding Energy.

Application questions catching you out?

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