EdX

Introduction to Astrophysics (edX)

Introduction to Astrophysics (edX)

Learn about the physical phenomena at play in astronomical objects and link theoretical predictions to observations. How can we study the Universe we live in using the only available information it provides us with: light ?

Class Deals by MOOC List - Click here and see EdX's Active Discounts, Deals, and Promo Codes.

This course provides an overview of the physical phenomena at play in the astronomical objects surrounding us, from planets and stars to the cosmic filaments, from galaxies such as our own Milky Way to large galaxy clusters. The course emphasizes the links between theoretical predictions and observations.

In this course, you will learn the basics of astrophysics using simplified mathematical developments. In particular, you will learn the role played by gravity in astrophysics, including gravitational lensing, and how matter and radiation interact. The material in this course is essential to follow more advanced astrophysics courses.

What you'll learn

  • Influence of gravity on celestial bodies
  • Matter-radiation interactions
  • Star formation and evolution
  • Basics of cosmology

Syllabus


Week 1:


  • Parallaxes and Parsec
  • General Introduction
  • Mass and Distance scales
  • Kepler's Laws
  • Virial Theorem
  • Potential Energy of a Sphere
  • Numerical Illustrations of Virial Theorem

Week 2:


  • Radiation processes in Astrophysics
  • Line and Continuum Radiation
  • Examples of Spectra
  • Radiated Energy and Units
  • Radiation Pressure
  • Bremsstrahlung and Synchrotron Radiations
  • Black Body Radiation
  • Total Luminosity (sigma T^4)
  • Wien's Law
  • Atomic Emission Lines
  • The Case of Hydroge
  • How to Measure Radiation
  • Flux, Luminosity, Filters
  • Illustration: How do we Make True Color Images?
  • Magnitudes
  • Color of Celestial Bodies
  • Distance Modulus

Week 3:


  • Doppler Effect
  • Doppled Measurement
  • Stellar Rotation
  • Exoplanets and Stellar Radial Velocities
  • Hubble Law
  • Interstellar Medium
  • Nebular Emission, Stromgroen Sphere
  • Absorption, diffusion (Mie et Rayleigh)
  • Optical Depth
  • Redening
  • Tidal Forces
  • Influence on Moon-Earth Distance
  • Distance to the Moon Using Laser Measurements

Week 4:


  • Roche Limit
  • Example of Saturn's Rings
  • Example of a Comet Disrupted by Jupiter's Tidal Forces
  • Cometary Tails and Radiation Pressure
  • Energy Balance
  • Global Warming
  • Planetary Atmospheres
  • Hydrostatic Equilibrium
  • Atmospheric height-scale

Week 5:


  • Stellar Formation
  • Free-fall Time
  • Jeans' Mass and radius
  • Kelvin-Helmholtz Time
  • Stellar Energy Balance
  • HR Diagram
  • Spectral Classification
  • Effect of Redening
  • Radius-Luminosiy Relation
  • Stellar Evolution in the HR Diagram
  • Stellar Deaths
  • Supernovae, Planetary Nebulae, White Dwarfs, Neutron Stars
  • Age of Stellar Clusters

Week 6:


  • Galaxies: General Description
  • Morphological Classification
  • Numerical Illustrations
  • The Milky-Way
  • Oort Constants and Galactic Motion
  • Rotation Curves of Spiral Galaxies
  • Elliptical galaxies and the Virial Theorem
  • Galaxy Clusters
  • Dark Matter

Week 7:


  • Big Bang: Basic Presentation
  • Hubble Expansion
  • Cosmological Redshift
  • Cosmic Background Radiation
  • Distance Ladder
  • Hubble Diagram
  • Cepheides as Distance Indicators
  • Supernovae as Distance Indicators
  • Gravitational Lenses
  • Deflection Angle
  • Properties of Gravitational Lenses
  • Light (apparent) Magnification
  • Einstein Radius
  • Caustics and Critical Lines
Go to Class
MOOC List is learner-supported. When you buy through links on our site, we may earn an affiliate commission.

Related Courses

Semiconductor Fundamentals (edX) EdX
Purdue University,PurdueX

Semiconductor Fundamentals (edX)

From smartphones to satellites, semiconductors are everywhere. Tying together physics, chemistry, and electrical engineering, this easy-to-follow introduction provides the background needed to understand devices such as transistors and solar cells. This course provides the essential foundations required to understand the operation of semiconductor devices such as transistors, diodes, solar cells, light-emitting devices, and more.

Jan 9th 2023
5-12 Weeks
Cavity Quantum Optomechanics (edX) EdX
École Polytechnique Fédérale de Lausanne,EPFLx

Cavity Quantum Optomechanics (edX)

Fundamentals of optomechanics. Basic principles, recent developments and applications. Optomechanics is the study of the interaction between light and mechanical systems which can result in the manipulation of the state of both light and the mechanics. The nature of this interaction gives rise to a wide range of applications in both fundamental physics and technological advancements. In this course, you will learn the concepts and tools required for conducting research in the field of cavity optomechanics.

Self Paced
Self-Paced
Pre-University Physics (edX) EdX
Delft University of Technology,DelftX

Pre-University Physics (edX)

Prepare for your technical studies by reviewing the fundamentals of physics. Become familiar with the way physics and physics-related topics are taught at university level. Physics is the foundation of many important science and engineering disciplines. Understanding its basics is fundamental for advanced studies. In this course, you will have the chance to review the fundamentals either for your own interest, or to ensure you have a smooth start in the first year of your Bachelor’s degree.

Self Paced
Self-Paced
Global Warming Science (edX) EdX
MIT,MITx

Global Warming Science (edX)

Learn about the physics, chemistry, biology, and geology of the earth’s climate system. Global Warming Science teaches you about the risks and uncertainties of future climate change by examining the science behind the earth’s climate. You will be able to answer such questions as, “What is the Greenhouse Effect?” and “How and why has earth’s climate changed through geologic history?”

No sessions available
13-24 Weeks
The Quantum Internet and Quantum Computers: How Will They Change the World? (edX) EdX
Delft University of Technology,DelftX

The Quantum Internet and Quantum Computers: How Will They Change the World? (edX)

Discover quantum computers and the quantum internet. Learn the principles and promises behind these developments and how they will impact our future. There is no doubt that quantum computers and the quantum internet will have a great impact on our world. But we don’t yet know quite how. As with traditional computers - we will only see the effects in the decades to come.This course will provide you with a basic understanding of quantum computing and the quantum internet. Together, we’ll peek into the fascinating world of quantum phenomena, such as qubits, superposition, and entanglement.

Self Paced
Self-Paced
Introduction to Quantum Transport (edX) EdX
Purdue University,PurdueX

Introduction to Quantum Transport (edX)

This course introduces the non-equilibrium Green’s function (NEGF) method widely used to describe quantum effects in nanoscale devices, along with its applications to spintronic devices. This course introduces the Schrödinger equation, using the tight-binding method to discuss the concept of bandstructure and E(k) relations, followed by an introduction to the NEGF method with simple illustrative examples. Concept of spinors is introduced along with the application of the NEGF method to spintronic devices.

Feb 12th 2024
5-12 Weeks
Understanding Nuclear Energy (edX) EdX
Delft University of Technology,DelftX

Understanding Nuclear Energy (edX)

Learn the science and technology behind nuclear energy and the special features of this energy source. In this nuclear energy course, we will tackle provocative questions such as: Is nuclear energy a good substitute for fossil fuels to reduce our CO2 emission or not?; Can nuclear reactors operate safely without any harm to the public and environment?; How much nuclear waste is produced and how long does it need to be stored safely?; How can we make nuclear energy clean and more sustainable?; How much are nuclear energy costs?

Self Paced
Self-Paced
Quantum Mechanics of Molecular Structures (edX) EdX
The University of Tokyo,UTokyoX

Quantum Mechanics of Molecular Structures (edX)

Learn two methods used to determine molecular structures and their properties in this introduction to Quantum Mechanics. Knowing the geometrical structure of the molecules around us is one of the most important and fundamental issues in the field of chemistry. This course introduces the two primary methods used to determine the geometrical structure of molecules: molecular spectroscopy and gas electron diffraction.

Self Paced
Self-Paced