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Nuclear Physics overview

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Key ideas, equations and common mistakes. Open any topic below for the full explanation.

Identify what is being counted, what is actually detected and which energy account is complete. Those decisions come before substituting numbers.

Structure and evidence

Most alpha particles passing a thin foil are little deflected; rare large deflections support a small concentration of positive charge and mass. A nucleus has Z protons and A - Z neutrons. A neutral atom has Z electrons. Isotopes have the same Z and different neutron counts; ionisation changes electrons without changing the nucleus.

Radiation and detection

Alpha is a helium-4 nucleus, beta-minus an electron from a nuclear process, and gamma an electromagnetic photon. Alpha and beta have opposite electric-force directions; gamma is uncharged. Penetration and ionisation comparisons need an energy and absorber context. Dense internal ionisation can be hazardous even for short-range radiation.

Count rate = recorded count / duration
Net source rate = total rate - background rate

Activity in Bq counts decays per second. Detector rate counts recorded events per second. They are related only through the stated emission and detection conditions. For unequal durations in a stable-rate series, pool counts over the total time; do not give every interval equal weight.

Decay is spontaneous and random for an individual nucleus. A large population has a predictable statistical trend, with fluctuations in finite counts. Repeats do not remove an incorrect background or changing geometry.

Half-life and time dependence

After one, two and three half-lives, the expected parent population, activity or proportional corrected rate is 1/2, 1/4 and 1/8 of its initial value. Halve a background-subtracted rate. The raw total tends towards background rather than zero.

A = λN
N = N0e-λt
A = A0e-λt
λt1/2 = ln(2)

For fixed detection conditions, ln(r/r0) versus t has gradient -λ. Preserve zero and negative corrected records but do not logarithmically fit them as zero. Near-background positive points also need an uncertainty judgement. A fitted half-life from constructed values checks a model calculation; it does not establish experimental agreement.

Applications need two kinds of reasoning

Explain the penetration or ionisation that makes the task possible, then relate half-life to its preparation, measurement or operating interval. A thickness gauge needs partial transmission over the useful range. An externally detected internal tracer needs radiation that escapes tissue. Treatment and sterilisation use damage from ionisation, with suitable penetration and controlled exposure.

Longer half-life is not universally preferable. Physical half-life is distinct from biological clearance. Irradiation is exposure to radiation; contamination is the presence of radioactive material.

Conservation and binding

Balance total nucleon number and charge across all particles. Alpha emission changes the daughter by ΔA = -4 and ΔZ = -2. Beta-minus leaves A unchanged and raises daughter Z by one. Gamma leaves A and Z unchanged while reducing nuclear energy.

For a fixed beta-decay branch, a two-product model would fix the electron energy. Its continuous energy spectrum and a missing momentum vector support an additional emitted particle. Energy and momentum conservation apply to the complete account.

Mass defect = Zmp + (A - Z)mn - mnucleus
Binding energy = Δmc2
Binding energy per nucleon = binding energy / A
Released energy Q = (minitial - mfinal)c2

Keep atomic and nuclear mass conventions consistent and retain digits until after subtraction. Binding energy is the positive energy required for complete separation. A fusion or fission energy account must include every reactant and product, including free neutrons.

The binding-energy-per-nucleon curve rises across light nuclei, peaks broadly near A = 50-60 and falls gradually for heavy nuclei. Compare total binding energies for a reaction by multiplying each per-nucleon value by its own nucleon count.

Nuclear quantities, symbols and units
QuantitySymbolUnit or meaning
Nucleon, proton and neutron numbersA, Z, NDimensionless counts; neutron N = A - Z
Number of specified particles or parent nucleiNDimensionless count
Amount of substancenmol
Avogadro constantNAmol-1
Molar massMkg/mol; g/mol when paired with g
Sample or particle massmkg; u for a specified particle
Atomic, electron, proton and neutron massesma, me, mp, mnkg or u; state which entity
ActivityABq = decays per second
Detected count ratercounts/s or counts/min
Time and half-lifet, t1/2s; convert min consistently
Decay constantλs-1 for t in s
Energy, including binding energyEJ, eV or MeV
Energy released per reactionQJ or MeV
Vacuum light speedcm/s

A denotes a nucleon count in nuclide notation and activity in a decay-rate equation; identify the context and unit. N can denote neutron number A - Z or the remaining parent population. Dimensionless counts can also be labelled n or m under a stated convention; in this chapter n denotes amount in mol and m denotes mass. Read the definition and unit before substituting.

Supplied rounded conversions:
1 u = 1.66 × 10-27 kg
1 u c2 = 931.5 MeV
1 eV = 1.60 × 10-19 J
1 MeV = 1.60 × 10-13 J

Before reporting an answer, check the named entity, time unit, background correction, mass convention and whether the requested energy is total or per nucleon.

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