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Cosmology Course
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Cosmology Course

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Master the science of the universe from the Big Bang to the accelerating expansion driving it today. This course takes you through modern cosmology's most powerful theories, from general relativity and inflation to dark matter and large-scale structure. Whether you're a physics student or a dedicated science enthusiast, you'll gain the rigorous conceptual and quantitative foundation that professional cosmologists rely on.

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What you will learn:

You will build a thorough understanding of the standard cosmological model, starting with the observational evidence for the Big Bang and progressing through the thermal history of the early universe. You will study special and general relativity as they apply to cosmic expansion, and work through the Friedmann equations governing how the universe evolves over time. The course covers inflation, dark matter candidates, dark energy models, and the formation of large-scale structure. You will also explore gravitational waves, black hole physics, and the statistical tools used in modern cosmological research. By the end, you will be equipped to read and critically evaluate current cosmology literature with confidence.

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Course content

8 Chapters • 39 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Modern Cosmology

  • Lesson 1 • Observational Evidence for the Big Bang

    Presents the three pillars of Big Bang evidence: cosmic expansion, light element abundances, and the cosmic microwave background. Links observations to theoretical predictions.

  • Lesson 2 • What Cosmology Studies

    Defines cosmology's scope, distinguishing it from astronomy and astrophysics. Grounds students in the questions cosmology seeks to answer about origin, structure, and fate.

  • Lesson 3 • History of Cosmological Thought

    Traces ideas from ancient cosmologies through the Copernican revolution to 20th-century breakthroughs. Shows how paradigm shifts shaped the modern scientific framework.

  • Lesson 4 • Units, Scales, and Cosmic Distances

    Introduces the measurement systems and distance ladders used throughout cosmology. Prepares students to interpret data across vastly different physical scales.

Chapter 2See details

Special and General Relativity Essentials

  • Lesson 1 • Relativistic Redshift and Light Propagation

    Distinguishes gravitational redshift from cosmological redshift and Doppler shift. Prepares students to interpret spectroscopic observations correctly.

  • Lesson 2 • Curved Spacetime and Gravity

    Introduces general relativity as a geometric theory of gravity. Students understand how mass-energy curves spacetime and how this drives cosmic dynamics.

  • Lesson 3 • Einstein Field Equations Overview

    Presents the structure and physical meaning of Einstein's field equations without full tensor derivation. Connects stress-energy content to spacetime geometry.

  • Lesson 4 • Special Relativity Core Concepts

    Covers the postulates of special relativity and their consequences for space and time. Establishes the spacetime interval as the invariant foundation for further study.

Chapter 3See details

The Expanding Universe and Friedmann Models

  • Lesson 1 • Friedmann and Fluid Equations

    Presents the Friedmann equations governing expansion rate and the fluid equation governing energy density evolution. Students identify how each component drives or resists expansion.

  • Lesson 2 • Cosmic Expansion Histories

    Solves Friedmann equations for matter-, radiation-, and vacuum-dominated universes. Students compare expansion rates and identify the current concordance model.

  • Lesson 3 • Cosmological Parameters and Measurements

    Defines the key parameters describing our universe and surveys methods used to measure them. Connects theoretical quantities to observational campaigns.

  • Lesson 4 • The FLRW Metric

    Derives the Friedmann-Lemaître-Robertson-Walker metric as the unique solution consistent with cosmic symmetry. Introduces the scale factor as the key dynamic variable.

  • Lesson 5 • Cosmological Principle and Symmetry

    Establishes homogeneity and isotropy as the foundational symmetry assumptions of standard cosmology. Justifies these assumptions with observational evidence.

Chapter 4See details

The Hot Big Bang and Thermal History

  • Lesson 1 • Big Bang Nucleosynthesis

    Explains the formation of light nuclei in the first minutes and the predicted primordial abundances. Demonstrates how BBN provides a precision test of the standard model.

  • Lesson 2 • Cosmic Microwave Background Radiation

    Characterizes the CMB spectrum, temperature, and anisotropies as a snapshot of the early universe. Introduces the power spectrum as the primary data product.

  • Lesson 3 • Particle Physics in the Early Universe

    Surveys the particle content of the universe at high temperatures and the sequence of annihilation events. Links the Standard Model of particle physics to cosmological evolution.

  • Lesson 4 • Early Universe Thermodynamics

    Establishes the relationship between temperature, energy density, and scale factor in the early universe. Introduces the concept of thermal equilibrium and its breakdown.

  • Lesson 5 • Recombination and the Last Scattering Surface

    Describes hydrogen recombination, photon decoupling, and the formation of the last scattering surface. Connects this epoch to the observed cosmic microwave background.

Chapter 5See details

Cosmic Inflation and Structure Seeds

  • Lesson 1 • Quantum Fluctuations and Primordial Spectra

    Explains how quantum vacuum fluctuations of the inflaton are stretched to macroscopic scales. Derives the nearly scale-invariant power spectrum of primordial perturbations.

  • Lesson 2 • Beyond Single-Field Inflation

    Surveys multi-field inflation, curvaton, and ekpyrotic alternatives. Highlights how different models produce distinct observational signatures.

  • Lesson 3 • Observational Tests of Inflation

    Connects inflationary predictions to CMB anisotropy measurements and large-scale structure surveys. Evaluates which inflationary models remain viable after current data.

  • Lesson 4 • Problems Motivating Inflation

    Identifies the horizon, flatness, and magnetic monopole problems that standard Big Bang cosmology cannot resolve. Motivates the need for a period of accelerated early expansion.

  • Lesson 5 • Inflationary Dynamics

    Presents slow-roll inflation driven by a scalar inflaton field and the conditions for sustained acceleration. Derives the number of e-folds needed to solve the horizon problem.

Chapter 6See details

Dark Matter: Evidence and Candidates

  • Lesson 1 • Alternative Gravity Theories

    Introduces modified gravity approaches such as MOND as alternatives to particle dark matter. Evaluates their successes and failures against cosmological data.

  • Lesson 2 • Particle Dark Matter Candidates

    Reviews WIMPs, axions, sterile neutrinos, and other particle candidates. Evaluates each candidate's theoretical motivation and detection prospects.

  • Lesson 3 • Dark Matter Detection Strategies

    Covers direct detection, indirect detection, and collider searches for dark matter. Assesses current experimental limits and future prospects.

  • Lesson 4 • Properties Required of Dark Matter

    Derives the physical properties dark matter must have to match observations. Distinguishes hot, warm, and cold dark matter and their structural consequences.

  • Lesson 5 • Observational Evidence for Dark Matter

    Surveys evidence from galaxy rotation curves, cluster dynamics, gravitational lensing, and CMB. Demonstrates that multiple independent probes converge on the same conclusion.

Chapter 7See details

Dark Energy and Accelerated Expansion

  • Lesson 1 • Probes of Dark Energy

    Covers baryon acoustic oscillations, weak lensing, and galaxy clustering as dark energy probes. Explains how each constrains the expansion history and growth of structure.

  • Lesson 2 • Discovery of Cosmic Acceleration

    Recounts the supernova observations that revealed accelerated expansion and their implications. Establishes the need for a new energy component dominating the universe today.

  • Lesson 3 • Dynamical Dark Energy Models

    Surveys quintessence, phantom fields, and other dynamical scalar field models. Compares their predictions for w(z) evolution against observational data.

  • Lesson 4 • Modified Gravity as Dark Energy Alternative

    Examines f(R) gravity and other modified gravity theories that mimic dark energy. Distinguishes their predictions from those of the cosmological constant.

  • Lesson 5 • Cosmological Constant as Dark Energy

    Presents the cosmological constant as the simplest dark energy model and its vacuum energy interpretation. Introduces the cosmological constant problem and fine-tuning issues.

Chapter 8See details

Large-Scale Structure and Galaxy Formation

  • Lesson 1 • Matter Power Spectrum

    Defines the matter power spectrum and explains how it encodes the statistical distribution of density fluctuations. Connects it to the primordial spectrum via the transfer function.

  • Lesson 2 • Observational Surveys and Cosmological Inference

    Reviews major galaxy redshift surveys and their role in measuring cosmological parameters. Explains statistical tools used to extract cosmological information from survey data.

  • Lesson 3 • Galaxy Formation and Feedback

    Outlines how baryons cool and condense within dark matter halos to form galaxies. Covers stellar and AGN feedback as regulators of star formation.

  • Lesson 4 • Nonlinear Collapse and Halo Formation

    Presents the spherical collapse model and Press-Schechter formalism for halo abundance. Introduces N-body simulations as the tool for nonlinear structure formation.

  • Lesson 5 • The Cosmic Web

    Describes the filamentary large-scale structure of the universe and its formation through gravitational dynamics. Connects simulations to observed galaxy surveys.

  • Lesson 6 • Linear Perturbation Theory

    Develops the equations governing small density perturbations in an expanding universe. Introduces the Jeans instability and the growth factor D(z).

Certification

Your valid completion certificate

This course is for you:

  • Physics undergraduates: ready to connect classroom theory to real cosmic phenomena.

  • Amateur astronomers: eager to move beyond observation into the underlying physical framework.

  • Science journalists: seeking deeper technical grounding to cover cosmology stories accurately.

  • Graduate school applicants: building a competitive foundation before entering a research program.

  • Engineers and mathematicians: curious about how quantitative tools apply to the universe.

  • High school science teachers: wanting to bring current cosmological thinking into their classrooms.

What our students say

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