Unit 5: Nuclear and Quantum Physics

Topic 5.3: Radioactive Decay Questions

Practice 20 exam-style questions for IB Physics SL Topic 5.3. Review the question stems below, then unlock the full Question Bank to access markschemes, model answers, and AI grading.

1Identify2 marks
Aimnova practice
A radiation is found to travel at almost the speed of light and is deflected by a magnetic field in the direction expected for a negative charge.

Identify the type of radiation and state one further property that distinguishes it from gamma radiation.
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2State2 marks
Aimnova practice
State what is meant by the activity of a radioactive source, and state its SI unit.
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3State2 marks
Aimnova practice
State the two quantities that are conserved when a nuclear decay equation is balanced.
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4Determine2 marks
Aimnova practice
A radioactive isotope has a half-life of 4.0 days.

A sample starts with an activity of 2.4 × 10⁸ Bq.

Determine the activity of the sample after 16 days.
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5State2 marks
Aimnova practice
State what an alpha particle is in terms of its constituent particles, and give its charge.
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6State1 mark
Aimnova practice
State what is meant by the *mass defect* of a nuclear decay.
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7Identify2 marks
Aimnova practice
Radium-224 (Ra) decays by alpha emission to radon.

Identify the proton number and the nucleon number of the radon daughter nuclide.
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8Determine1 mark
A nucleus of radium-226, 22688Ra, first emits an alpha particle.

The nuclide produced then emits a beta-minus (β⁻) particle.

What are the numbers of protons and neutrons in the final nuclide?
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9Determine3 marks
Aimnova practice
A decay has a mass defect of 0.004500 u.

Determine the energy released, in joules.

(1 u = 1.661 × 10⁻²⁷ kg, c = 3.00 × 10⁸ m s⁻¹.)
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10Show that2 marks
Aimnova practice
A nucleus at rest undergoes alpha decay.

The atomic masses are: parent = 238.050790 u, daughter = 234.043600 u, alpha = 4.002600 u.

Show that the energy released in the decay is about 4 MeV.

(1 u = 931.5 MeV c⁻².)
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11Explain3 marks
Aimnova practice
Explain why, when a stationary nucleus decays into two products, the lighter product carries the larger share of the released energy.
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12Estimate2 marks
Aimnova practice
A stationary nucleus emits an alpha particle (mass 4 u) and recoils as a daughter nucleus (mass 234 u).

The total energy released is 4.80 MeV.

Estimate the kinetic energy of the alpha particle, in MeV.
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13Deduce2 marks
Aimnova practice
Two sources M and N have the same half-life.

The activity of M is presently 6 times the activity of N.

Deduce the ratio of the activity of M to the activity of N after four half-lives have passed.
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14Determine3 marks
Aimnova practice
Thorium-234 (Th) emits a beta-minus particle, and the nuclide formed then emits a second beta-minus particle.

Determine the proton number and the neutron number of the FINAL nuclide.
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15Explain3 marks
Aimnova practice
A worker handling a sealed radioactive source is told that, of the three types of radiation, gamma poses the greatest hazard from outside the body but alpha poses the greatest hazard if the source material is inhaled.

Explain this apparent contradiction.
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16Identify4 marks
Aimnova practice
A student tests an unknown radioactive source.

A sheet of paper placed in front of it does not change the count rate, but a 3 mm aluminium plate reduces the count rate almost to the background level.

When the radiation passes between two charged plates, it is deflected.

Identify the type of radiation and justify your answer using all three observations.
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17Compare4 marks
Aimnova practice
Compare alpha and gamma radiation.

State which is more penetrating and which is more ionising, and explain why a source held a short distance from a worker poses a greater external hazard if it emits gamma rather than alpha.
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18Determine5 marks
Aimnova practice
A Geiger counter placed next to a fresh radioactive source records a count rate of 410 counts per second.

When the source is removed, the counter still records 10 counts per second from background radiation.

The source has a half-life of 15 minutes.
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19Identify1 mark
A research lab compares a gamma (γ) source with a beta-minus (β⁻) source. A technician writes three statements comparing the γ radiation with the β⁻ radiation:

I. The γ radiation travels faster than the β⁻ radiation in a vacuum.
II. The γ radiation is more penetrating than the β⁻ radiation.
III. The γ radiation is more strongly ionizing than the β⁻ radiation.

Which of the statements are correct?
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20Sketch3 marks
Aimnova practice
Sketch a graph of count rate (corrected for background) against time for a radioactive source, marking the value of one half-life on the time axis, and describe two features of the curve.
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