- The half-life of plutonium-239 is 24,300 years. If a nuclear bomb released 8 kg of this isotope, how many years would pass before the amount is reduced to 1 kg ?
- The half-life of radon-222 is 3.8 days. How much of a 100 gram sample is left after 15.2 days?
The Correct Answer and Explanation is :
Let’s address both questions step by step, using the half-life formula:
Formula for Half-Life:
The general formula for the amount of a substance remaining after a certain period is: A=A0×(12)tTA = A_0 \times \left( \frac{1}{2} \right)^{\frac{t}{T}}
Where:
- AA is the amount remaining after time tt,
- A0A_0 is the initial amount,
- TT is the half-life of the substance,
- tt is the time elapsed.
1. Plutonium-239 Question:
Given:
- Initial mass (A0A_0) = 8 kg,
- Final mass (AA) = 1 kg,
- Half-life (TT) = 24,300 years.
We need to solve for tt, the time it will take for the mass to reduce from 8 kg to 1 kg.
Using the formula: 1=8×(12)t24,3001 = 8 \times \left( \frac{1}{2} \right)^{\frac{t}{24,300}}
Solving for tt: 18=(12)t24,300\frac{1}{8} = \left( \frac{1}{2} \right)^{\frac{t}{24,300}}
Taking the natural logarithm of both sides: ln(18)=t24,300×ln(12)\ln \left( \frac{1}{8} \right) = \frac{t}{24,300} \times \ln \left( \frac{1}{2} \right)
Since ln(12)=−ln(2)\ln \left( \frac{1}{2} \right) = -\ln(2), we have: ln(1)−ln(8)=t24,300×(−ln(2))\ln(1) – \ln(8) = \frac{t}{24,300} \times (-\ln(2)) ln(8)≈2.0794,ln(2)≈0.6931\ln(8) \approx 2.0794, \quad \ln(2) \approx 0.6931
Thus: −2.0794=t24,300×(−0.6931)-2.0794 = \frac{t}{24,300} \times (-0.6931)
Now, solve for tt: t=2.0794×24,3000.6931≈72,500 yearst = \frac{2.0794 \times 24,300}{0.6931} \approx 72,500 \text{ years}
Thus, it will take approximately 72,500 years for the plutonium-239 to reduce from 8 kg to 1 kg.
2. Radon-222 Question:
Given:
- Initial mass (A0A_0) = 100 grams,
- Half-life (TT) = 3.8 days,
- Time elapsed (tt) = 15.2 days.
We need to determine how much of the original 100-gram sample remains after 15.2 days.
Using the same half-life formula: A=100×(12)15.23.8A = 100 \times \left( \frac{1}{2} \right)^{\frac{15.2}{3.8}}
First, calculate 15.23.8\frac{15.2}{3.8}: 15.23.8=4\frac{15.2}{3.8} = 4
Now: A=100×(12)4A = 100 \times \left( \frac{1}{2} \right)^4 A=100×116=6.25 gramsA = 100 \times \frac{1}{16} = 6.25 \text{ grams}
Thus, after 15.2 days, 6.25 grams of the original 100 grams of radon-222 will remain.
Explanation:
- Plutonium-239:
- The half-life of plutonium-239 is 24,300 years, meaning after each 24,300-year period, half of the initial quantity decays. To find how long it will take for 8 kg to reduce to 1 kg, we apply the half-life formula. The calculation shows that it takes approximately 72,500 years for the mass to decrease to 1 kg.
- Radon-222:
- Radon-222 has a much shorter half-life of 3.8 days. After 4 half-lives (which equals 15.2 days), the amount of radon reduces by a factor of 116\frac{1}{16}, or 6.25 grams remaining from the original 100 grams.
These calculations illustrate how substances decay exponentially over time, with each “half-life” reducing the remaining amount by half, which can be modeled using the formula above.