
Modern Physics Course
Master the theoretical framework that defines modern physics, from quantum mechanics and special relativity to nuclear structure and quantum field theory. This course takes you from the failures of classical physics all the way to the Standard Model and beyond. Whether you're advancing your academic career or deepening your scientific foundation, this is the most comprehensive modern physics program available.
What your team will master:
You will build a rigorous understanding of quantum mechanics, starting with wave functions and the Schrödinger equation and extending to three-dimensional systems, atomic structure, and molecular bonding. You will study special relativity, statistical mechanics, and solid-state physics, connecting microscopic quantum behavior to macroscopic physical properties. The course also covers nuclear and particle physics, quantum field theory, and applications in quantum computing, astrophysics, and laser optics. Numerical methods and experimental techniques are included to give you practical problem-solving tools. By the end, you will have the theoretical depth and analytical skills expected at the graduate level.
How your team learns in practice Modern Physics Course
How your team practices Modern Physics Course
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Course Content
8 Chapters • 38 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Modern Physics
Foundations of Modern Physics
Lesson 1 • Quantization of Energy
Presents Planck's quantum hypothesis and Einstein's photon model. Bridges the gap between classical wave theory and discrete energy packets.
Lesson 2 • Special Relativity Fundamentals
Introduces Einstein's two postulates and their logical consequences. Connects to classical mechanics by showing where it remains valid at low speeds.
Lesson 3 • Limits of Classical Mechanics
Identifies where Newtonian mechanics and Maxwell's electromagnetism fail. Sets the stage for understanding why new physics was necessary.
Lesson 4 • Relativistic Energy and Momentum
Derives relativistic expressions for momentum and energy. Demonstrates mass-energy equivalence as a direct consequence of special relativity.
Chapter 2HideHide detailsSee detailsQuantum Mechanics Principles
Quantum Mechanics Principles
Lesson 1 • Wave Functions and Probability
Defines the wave function as the fundamental quantum descriptor. Establishes Born's probabilistic interpretation and normalization requirements.
Lesson 2 • The Schrodinger Equation
Derives the time-dependent and time-independent Schrodinger equations. Connects energy quantization to boundary conditions on wave functions.
Lesson 3 • Simple Quantum Systems
Solves exactly solvable models to build physical intuition. Results from these models underpin more complex atomic and molecular systems.
Lesson 4 • Dirac Notation and Formalism
Introduces bra-ket notation as a compact and general quantum language. Prepares students for advanced treatments of spin and multi-particle systems.
Lesson 5 • Operators and Observables
Introduces Hermitian operators as representations of physical quantities. Links eigenvalue equations to measurable outcomes in experiments.
Chapter 3HideHide detailsSee detailsQuantum Mechanics in Three Dimensions
Quantum Mechanics in Three Dimensions
Lesson 1 • Angular Momentum in Quantum Mechanics
Derives quantization of orbital angular momentum from commutation relations. Establishes quantum numbers l and m as labels for angular momentum states.
Lesson 2 • Electron Spin
Introduces intrinsic spin as a purely quantum mechanical property. Extends the quantum number set to include spin and explains the Stern-Gerlach experiment.
Lesson 3 • The Hydrogen Atom
Solves the Coulomb potential problem exactly using spherical coordinates. Produces the full set of hydrogen wave functions and energy levels.
Lesson 4 • 3D Schrodinger Equation
Generalizes the Schrodinger equation to three spatial dimensions. Introduces separation of variables as the primary solution strategy.
Lesson 5 • Multi-Electron Atoms
Applies the Pauli exclusion principle to build up atomic structure. Explains periodic table trends through electron configuration and shell filling.
Chapter 4HideHide detailsSee detailsAtomic and Molecular Structure
Atomic and Molecular Structure
Lesson 1 • Molecular Bonding Basics
Describes covalent bonding through quantum mechanical overlap of atomic orbitals. Introduces the Born-Oppenheimer approximation for separating nuclear and electronic motion.
Lesson 2 • Perturbation Theory
Introduces time-independent perturbation theory as a tool for real systems. Applies corrections to hydrogen energy levels from small additional interactions.
Lesson 3 • Molecular Spectra
Analyzes rotational and vibrational energy levels of diatomic molecules. Connects molecular quantum numbers to infrared and microwave spectroscopy.
Lesson 4 • Atomic Spectra and Selection Rules
Explains observed spectral lines using quantum transitions and selection rules. Links photon emission and absorption to changes in quantum numbers.
Chapter 5HideHide detailsSee detailsStatistical Mechanics and Quantum Statistics
Statistical Mechanics and Quantum Statistics
Lesson 1 • Bose-Einstein Condensation
Describes the macroscopic occupation of the ground state in bosonic systems. Connects theoretical predictions to experimental observations in ultracold gases.
Lesson 2 • Free Electron Model of Metals
Applies Fermi-Dirac statistics to conduction electrons in metals. Explains heat capacity, electrical conductivity, and the Fermi energy concept.
Lesson 3 • Classical Statistical Mechanics Review
Revisits Maxwell-Boltzmann statistics as the classical limit. Establishes partition functions and free energy as bridges between micro and macro descriptions.
Lesson 4 • Blackbody Radiation Revisited
Derives the Planck distribution using photon statistics as massless bosons. Recovers Wien's law and Stefan-Boltzmann law from the full quantum treatment.
Lesson 5 • Quantum Distribution Functions
Derives Fermi-Dirac and Bose-Einstein distributions from indistinguishability. Contrasts quantum statistics with classical Maxwell-Boltzmann behavior.
Chapter 6HideHide detailsSee detailsSolid State and Condensed Matter Physics
Solid State and Condensed Matter Physics
Lesson 1 • Semiconductor Physics
Analyzes intrinsic and extrinsic semiconductors using band theory. Explains carrier concentration, doping, and the p-n junction at the quantum level.
Lesson 2 • Electrons in Periodic Potentials
Applies Bloch's theorem to electrons in a crystal lattice. Derives energy bands and band gaps from the periodic potential.
Lesson 3 • Crystal Structure and Lattices
Introduces Bravais lattices, unit cells, and reciprocal space. Provides the geometric foundation for all subsequent band structure calculations.
Lesson 4 • Superconductivity Fundamentals
Introduces the phenomenology of superconductivity and Cooper pair formation. Covers the Meissner effect and the BCS theory at a conceptual level.
Lesson 5 • Phonons and Lattice Vibrations
Quantizes lattice vibrations as phonons using the harmonic approximation. Connects phonon dispersion to thermal and acoustic properties of solids.
Chapter 7HideHide detailsSee detailsNuclear and Particle Physics
Nuclear and Particle Physics
Lesson 1 • Radioactive Decay
Analyzes alpha, beta, and gamma decay using quantum tunneling and selection rules. Derives decay laws and applies them to half-life calculations.
Lesson 2 • Nuclear Reactions and Fission
Covers Q-value calculations and cross sections for nuclear reactions. Explains fission chain reactions and the physics of nuclear energy release.
Lesson 3 • Elementary Particles and Forces
Classifies quarks, leptons, and gauge bosons within the Standard Model. Describes the four fundamental forces and their mediating particles.
Lesson 4 • Nuclear Structure
Describes the nucleus in terms of protons, neutrons, and binding energy. Introduces the liquid drop and shell models as complementary descriptions.
Lesson 5 • Particle Accelerators and Detectors
Explains how accelerators produce high-energy collisions for particle discovery. Describes detector technologies used to identify and measure particle properties.
Chapter 8HideHide detailsSee detailsQuantum Field Theory Introduction
Quantum Field Theory Introduction
Lesson 1 • Renormalization Concepts
Explains ultraviolet divergences and the renormalization procedure at a conceptual level. Introduces running coupling constants and the renormalization group idea.
Lesson 2 • Quantum Electrodynamics Overview
Introduces QED as the quantum field theory of electrons and photons. Explains gauge invariance and the minimal coupling of matter to the electromagnetic field.
Lesson 3 • Classical Field Theory Review
Recasts classical mechanics in terms of fields using the Lagrangian formalism. Establishes Noether's theorem as the link between symmetries and conservation laws.
Lesson 4 • Quantization of the Scalar Field
Promotes the classical scalar field to a quantum operator using canonical quantization. Introduces creation and annihilation operators and the Fock space of particle states.
Lesson 5 • Path Integral Formulation
Presents Feynman's path integral as an alternative to operator quantization. Connects the classical action to quantum amplitudes through sum over histories.
Your valid completion certificate
This course is for you:
Undergraduate physics students: ready to go deeper than their coursework allows.
Aspiring graduate students: building the theoretical foundation for competitive PhD applications.
Electrical engineers: seeking the quantum mechanics behind semiconductor and device physics.
Career changers: moving from classical engineering into quantum technology or research roles.
Science enthusiasts: committed to understanding modern physics with full mathematical rigor.
Working physicists: refreshing and formalizing knowledge across areas outside their specialty.
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