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Radioactivity was discovered in 1896 by Henri Becquerel - Leaving Cert Physics - Question 8 - 2020

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Radioactivity was discovered in 1896 by Henri Becquerel. Define (i) radioactivity, (ii) the becquerel. In the uranium decay series, U-238 decays to Pb-206 in a seri... show full transcript

Worked Solution & Example Answer:Radioactivity was discovered in 1896 by Henri Becquerel - Leaving Cert Physics - Question 8 - 2020

Step 1

Define (i) radioactivity, (ii) the becquerel.

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Answer

Radioactivity is the process by which unstable atomic nuclei release energy in the form of radiation. This occurs spontaneously through the disintegration of a nucleus. The becquerel (Bq) is the unit of radioactivity that measures the activity of a quantity of radioactive material, defined as one disintegration per second.

Step 2

(iii) Write a nuclear equation for the first decay in this series.

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Answer

The nuclear equation for the first decay of U-238 (which undergoes alpha decay) is:

23892U23490Th+42He\frac{238}{92}U \rightarrow \frac{234}{90}Th + \frac{4}{2}He

Step 3

(iv) Write a nuclear equation for the final decay in this series.

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The nuclear equation for the final decay of U-238 (which undergoes beta decay) is:

20682Pb20683Bi+β\frac{206}{82}Pb \rightarrow \frac{206}{83}Bi + \beta^-

Step 4

(v) Calculate the total number of alpha particles and the total number of beta particles emitted in the series.

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In the uranium decay series from U-238 to Pb-206:

  • The total number of alpha decays is 8 (each alpha decay decreases the mass number by 4).
  • The total number of beta decays is 6 (each beta decay keeps the mass number the same but changes the atomic number).

Step 5

(vi) How long will it take for the number of U-238 nuclei in a sample to decrease by a factor of 8?

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Answer

The time taken to reduce the number of nuclei by a factor of 8 is:

t=3×T1/2t = 3 \times T_{1/2} Where T_{1/2} = 4.5 \times 10^9 , \text{years}, therefore:

t=3×4.5×1091.35×1010yearst = 3 \times 4.5 \times 10^9 \approx 1.35 \times 10^{10} \, \text{years}

Step 6

(vii) A sample of U-238 contains 3.2 × 10^10 nuclei. Calculate its activity.

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Answer

The activity (A) can be calculated using the formula: A=λNA = \lambda N Where:

  • (N = 3.2 \times 10^{10})
  • (\lambda = \frac{0.693}{T_{1/2}} = \frac{0.693}{4.5 \times 10^9} \approx 1.56 \times 10^{-10} , \text{yr}^{-1}$$ Therefore:

A1.56×1010×3.2×10105.0BqA \approx 1.56 \times 10^{-10} \times 3.2 \times 10^{10} \approx 5.0 \, \text{Bq}

Step 7

(viii) U-238 is an isotope of uranium. What are isotopes?

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Answer

Isotopes are variants of a chemical element that have the same number of protons but a different number of neutrons and, hence, different mass numbers. For instance, U-238 has 92 protons and 146 neutrons, while U-235 has 92 protons and 143 neutrons.

Step 8

(ix) Why is radon considered to be dangerous?

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Answer

Radon is considered dangerous because it is a colorless, odorless gas that can accumulate in buildings and is a known carcinogen. Prolonged exposure to radon increases the risk of lung cancer.

Step 9

(x) How can the build-up of radon in a building be reduced?

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Answer

The build-up of radon in a building can be reduced through several methods:

  • Ensuring proper ventilation to allow radon to escape.
  • Sealing cracks in floors and walls to minimize gas entry.
  • Installing radon mitigation systems that actively reduce radon levels.

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