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Nuclear Physics Course
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Nuclear Physics Course

Master the fundamental and advanced principles of nuclear physics, from atomic structure and radioactive decay to fission, fusion, and reactor design. This course equips you with the quantitative tools and conceptual frameworks used by working nuclear scientists and engineers. Whether you are pursuing a career in energy, medicine, or research, this is the rigorous foundation you need.

Dedika for students

What your team will master:

You will develop a thorough understanding of nuclear forces, stability criteria, and the semi-empirical mass formula. You will master radioactive decay mathematics, reaction kinematics, and cross-section analysis for neutrons and charged particles. The course covers fission chain reactions, reactor kinetics, and fusion confinement approaches including the Lawson criterion. You will also study radiation interaction with matter, detector operation, and dose calculation methods. Advanced topics include nuclear astrophysics, Monte Carlo simulation, and professional practice in regulated nuclear environments.

How your team learns practically Nuclear Physics Course

How your team practises Nuclear Physics Course

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Course content

8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Atomic Structure

  • Lesson 1 • Nuclear Size and Density

    Quantifies nuclear radius using the empirical radius formula and derives nuclear density. Demonstrates the extreme density contrast between nuclei and atoms.

  • Lesson 2 • Historical Models of the Atom

    Traces atomic theory from Thomson through Rutherford to Bohr. Establishes why classical models failed and motivates quantum treatment used throughout the course.

  • Lesson 3 • Nuclear Composition and Notation

    Defines protons, neutrons, and electrons and introduces standard nuclide notation. Connects mass number and atomic number to nuclear identity.

  • Lesson 4 • Atomic Mass and Binding Energy

    Introduces atomic mass units, mass defect, and the mass-energy equivalence. Provides the quantitative basis for all energy calculations in later chapters.

  • Lesson 5 • Chart of the Nuclides Overview

    Introduces the chart of nuclides as a navigational tool for nuclear data. Students learn to read stability regions and identify decay modes from chart position.

Chapter 2See details

Nuclear Forces and Stability

  • Lesson 1 • Stability Criteria and Decay Prediction

    Applies N/Z ratio, binding energy, and Q-value criteria to predict nuclear stability. Prepares students to classify nuclides before studying specific decay modes.

  • Lesson 2 • Nuclear Shell Model

    Explains magic numbers through the nuclear shell model with spin-orbit splitting. Predicts ground-state spin and parity of odd-mass nuclei.

  • Lesson 3 • Semi-Empirical Mass Formula

    Derives the Bethe-Weizsäcker formula term by term from physical arguments. Students apply it to compute binding energies and identify stability trends.

  • Lesson 4 • The Strong Nuclear Force

    Characterises the short-range, charge-independent strong force that binds nucleons. Contrasts it with the Coulomb repulsion that destabilises heavy nuclei.

  • Lesson 5 • Nuclear Potential Well Models

    Introduces square-well and Woods-Saxon potentials as simplified nuclear models. Connects potential shape to observed nuclear energy levels.

Chapter 3See details

Radioactive Decay Fundamentals

  • Lesson 1 • Beta Decay Modes

    Covers beta-minus, beta-plus, and electron capture with neutrino emission. Explains the continuous beta spectrum and Fermi theory of weak interaction.

  • Lesson 2 • Decay Chains and Secular Equilibrium

    Analyses multi-step decay series using Bateman equations and equilibrium conditions. Students model natural decay chains and determine equilibrium activity ratios.

  • Lesson 3 • Gamma Decay and Internal Conversion

    Describes gamma emission as nuclear de-excitation and introduces multipole selection rules. Covers internal conversion as a competing electromagnetic process.

  • Lesson 4 • Decay Law and Activity

    Derives the exponential decay law from first principles and defines activity units. Establishes the quantitative framework used in all subsequent decay calculations.

  • Lesson 5 • Alpha Decay

    Explains alpha emission energetics, Q-value calculation, and Geiger-Nuttall tunnelling. Students compute daughter recoil energy and relate half-life to barrier penetration.

Chapter 4See details

Nuclear Reactions and Cross Sections

  • Lesson 1 • Reaction Kinematics and Q-Values

    Applies conservation of energy and momentum to nuclear reaction kinematics. Derives threshold energy conditions for endothermic reactions.

  • Lesson 2 • Cross-Section Concepts

    Defines microscopic and macroscopic cross sections and the mean free path. Connects cross-section magnitude to reaction probability and beam attenuation.

  • Lesson 3 • Direct Reaction Mechanisms

    Contrasts direct reactions with compound nucleus processes in terms of timescale. Covers stripping, pickup, and knockout reactions as nuclear structure probes.

  • Lesson 4 • Neutron Reactions and Moderation

    Analyses elastic scattering, capture, and fission cross sections for neutrons. Derives energy loss per collision and moderation ratio for common moderators.

  • Lesson 5 • Compound Nucleus Model

    Introduces Bohr's compound nucleus hypothesis and resonance formation. Explains Breit-Wigner resonance formula and its application to slow-neutron reactions.

Chapter 5See details

Nuclear Fission Physics

  • Lesson 1 • Fission Neutrons and Products

    Characterises prompt and delayed neutron emission spectra and fission product yields. Delayed neutrons are shown to be critical for reactor control.

  • Lesson 2 • Fission Discovery and Energetics

    Reviews the discovery of fission and calculates energy release from mass defect. Establishes why fission of heavy nuclei releases far more energy than chemical reactions.

  • Lesson 3 • Neutron Multiplication and Criticality

    Derives the four-factor and six-factor formulas for neutron multiplication. Students determine critical conditions for bare and reflected assemblies.

  • Lesson 4 • Reactor Kinetics and Control

    Analyses prompt and delayed neutron kinetics and reactivity feedback mechanisms. Covers the role of delayed neutrons in making reactor control physically achievable.

  • Lesson 5 • Liquid Drop Model of Fission

    Uses the liquid drop model to derive the fission barrier and fissility parameter. Explains why only heavy nuclei are fissile or fissionable.

Chapter 6See details

Nuclear Fusion Physics

  • Lesson 1 • Fusion Reaction Energetics

    Calculates Q-values for key fusion reactions and compares energy yield per nucleon. Establishes why light-nuclei fusion releases more energy per mass than fission.

  • Lesson 2 • Thermonuclear Reaction Rates

    Derives the Maxwell-Boltzmann-averaged reaction rate and the Gamow peak. Identifies the temperature range that maximises D-T fusion power density.

  • Lesson 3 • Magnetic Confinement Fusion

    Explains tokamak geometry, magnetic field configuration, and plasma heating methods. Evaluates the Lawson criterion for ignition in magnetic confinement devices.

  • Lesson 4 • Inertial Confinement Fusion

    Describes laser-driven implosion, hot-spot ignition, and target gain requirements. Contrasts driver efficiency and gain with magnetic confinement approaches.

  • Lesson 5 • Plasma Physics Essentials

    Introduces plasma as the fourth state of matter and defines key plasma parameters. Covers Debye shielding, plasma frequency, and particle confinement requirements.

Chapter 7See details

Radiation Interaction with Matter

  • Lesson 1 • Radiation Dose and Biological Effect

    Defines absorbed dose, equivalent dose, and effective dose with their units. Connects physical energy deposition to biological risk using radiation weighting factors.

  • Lesson 2 • Photon Attenuation Mechanisms

    Analyses photoelectric effect, Compton scattering, and pair production cross sections. Derives the total attenuation coefficient and half-value layer for shielding.

  • Lesson 3 • Neutron Interaction Mechanisms

    Classifies neutron interactions by energy regime and dominant reaction type. Covers moderation, capture, and fast-neutron scattering for shielding analysis.

  • Lesson 4 • Electron and Positron Interactions

    Covers ionisation, bremsstrahlung, and annihilation for electrons and positrons. Defines the critical energy and radiation length for electron transport.

  • Lesson 5 • Charged Particle Stopping Power

    Derives the Bethe-Bloch formula for heavy charged particle energy loss. Introduces the Bragg peak and its significance for radiation therapy and detector design.

Chapter 8See details

Nuclear Detectors and Measurement

  • Lesson 1 • Scintillation Detectors

    Describes inorganic and organic scintillator mechanisms and photomultiplier readout. Compares NaI(Tl) and BGO for gamma spectroscopy applications.

  • Lesson 2 • Neutron Detection Techniques

    Covers thermal neutron detection via conversion reactions and fast neutron detection by recoil. Introduces activation foil and fission chamber methods for flux measurement.

  • Lesson 3 • Spectral Analysis and Statistics

    Applies Poisson statistics to counting experiments and propagates uncertainty. Covers peak fitting, efficiency calibration, and background subtraction for quantitative analysis.

  • Lesson 4 • Gas-Filled Detector Principles

    Explains ionisation, proportional, and Geiger-Müller operating regions on the voltage curve. Covers pulse formation, dead time, and counting efficiency for gas detectors.

  • Lesson 5 • Semiconductor Detectors

    Explains p-n junction operation and charge collection in semiconductor detectors. Highlights HPGe superior energy resolution for precise gamma-ray spectroscopy.

Certification

Your valid completion certificate

This course is for you:

  • Physics or engineering student: building a specialization in nuclear science coursework.

  • Nuclear power plant technician: seeking deeper theoretical grounding behind daily operations.

  • Radiation protection officer: wanting rigorous physics behind the dosimetry work performed.

  • Career changer from aerospace or defense: applying quantitative skills to nuclear engineering.

  • Medical physicist in training: connecting clinical practice to fundamental nuclear decay theory.

  • Science enthusiast with strong math background: ready to move beyond popular-science explanations.

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