Problem 6.203 — Radioactive Decay: Ingrowth of Daughter

Problem Statement

Solve the nuclear physics problem: Solve the nuclear physics problem: Problem 6.203 — Radioactive Decay: Ingrowth of Daughter $= \frac{0.231 N_0}{0.462}(e^{-0.231t} – e^{-0.693t}) = 0.5N$ $e^{(0.693-0.231)t^*} = 0.693/$ $t^* = \ln3/0.462 = 2.38 \text{ hr}$ $N_B^{max} = 0.5N$ This problem applies fundamental physics principles to the

Given Information

Nuclide symbol, atomic number $Z$, mass number $A$
Atomic masses or binding energy per nucleon as given
Half-life $t_{1/2}$ or decay constant $\lambda$ if applicable

Physical Concepts & Formulas

Nuclear binding energy is the energy required to completely disassemble a nucleus into its constituent protons and neutrons. It arises from the strong nuclear force and is related to the mass defect by Einstein’s $E = \Delta m c^2$: the nucleus weighs less than its parts. Radioactive decay follows first-order kinetics: $N(t) = N_0 e^{-\lambda t}$, with $\lambda = \ln 2/t_{1/2}$. Activity $A = \lambda N$ decreases exponentially. Nuclear reactions (fission, fusion) release energy when the products have higher binding energy per nucleon than the reactants.

$\Delta m = [Zm_p + Nm_n – M_{\text{nucleus}}]$ — mass defect
$BE = \Delta m c^2$ — binding energy
$N(t) = N_0 e^{-\lambda t}$ — radioactive decay law
$t_{1/2} = \ln 2/\lambda$ — half-life
$A(t) = \lambda N(t) = A_0 e^{-\lambda t}$ — activity
$Q = (m_{\text{reactants}} – m_{\text{products}})c^2$ — Q-value of reaction

Step-by-Step Solution

Step 1 — Compute mass defect:

$$\Delta m = Zm_p + Nm_n – M_{\text{nucleus}}$$

Step 2 — Binding energy:

$$BE = \Delta m c^2 = \Delta m \times 931.5\,\text{MeV/u}$$

Step 3 — For decay problems: $\lambda = \ln 2/t_{1/2}$, then $N(t) = N_0 e^{-\lambda t}$.

Worked Calculation

Substituting all values with units:

$^4_2$He: $Z=2$, $N=2$; $m_p = 1.00728\,\text{u}$, $m_n = 1.00867\,\text{u}$, $M_{\text{He}} = 4.00260\,\text{u}$

$$\Delta m = 2(1.00728)+2(1.00867)-4.00260 = 4.03190-4.00260 = 0.02930\,\text{u}$$

$$BE = 0.02930\times931.5 = 27.29\,\text{MeV}$$

$$BE/A = 27.29/4 = 6.82\,\text{MeV/nucleon}$$

Answer

$$\boxed{BE/A \approx 6.82\,\text{MeV/nucleon}\text{ (for }^4\text{He)}}$$

Physical Interpretation

Iron-56 has the highest binding energy per nucleon (~8.8 MeV) — it is the most stable nucleus. Elements lighter than Fe release energy by fusion; heavier elements by fission — which is why stars burn hydrogen and helium (fusion) and why uranium can sustain a chain reaction (fission). The 27.3 MeV released when four protons fuse to helium-4 in stars powers sunlight.