
Optics Course
Master the full spectrum of optics — from geometric ray tracing to laser beam propagation and Fourier methods. This course gives engineers and physicists the quantitative tools to design, analyse, and optimise real optical systems. Build expertise that applies directly to cameras, microscopes, telescopes, fibre links, and photonic instruments.
What you will learn:
This course covers the core principles and advanced techniques of modern optics in a rigorous, application-driven sequence. You will work through geometric optics, wave optics, interference, diffraction, and polarisation, then apply those foundations to optical instrument design. Laser physics, Gaussian beam propagation, fibre optics, nonlinear effects, and thin-film coating design are all addressed in depth. You will also gain hands-on familiarity with optical simulation workflows, tolerancing methods, and metrology techniques. By the end, you will have the analytical skills to specify, design, and evaluate complete optical systems.
How you study in practice Optics Course
How you practise Optics Course
For businesses looking to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Light and Optics
Foundations of Light and Optics
Lesson 1 • Absorption, Transmission, and Scattering
Quantifies how media attenuate and scatter light using the Beer-Lambert law. Prepares students for material selection in optical system design.
Lesson 2 • Refraction and Snell's Law
Derives Snell's law from wave behaviour at interfaces and applies it to common materials. Establishes refractive index as a key material parameter.
Lesson 3 • Nature and Properties of Light
Covers the dual wave-particle nature of light and measurable properties. Anchors all subsequent optical analysis in physical reality.
Lesson 4 • Geometric Optics Fundamentals
Introduces ray approximation and rectilinear propagation of light. Provides the geometric framework used throughout lens and mirror analysis.
Lesson 5 • Reflection Principles
Examines specular and diffuse reflection using the law of reflection. Connects mirror geometry to image formation concepts introduced later.
Chapter 2HideHide detailsSee detailsMirrors and Curved Reflective Surfaces
Mirrors and Curved Reflective Surfaces
Lesson 1 • Mirror Equation and Magnification
Applies the mirror equation to calculate image distance and magnification. Connects algebraic results to physical image characteristics.
Lesson 2 • Ray Diagram Construction
Teaches systematic three-ray method for locating images graphically. Reinforces mirror equation results with visual verification.
Lesson 3 • Spherical Mirror Geometry
Defines centre of curvature, focal length, and principal axis for concave and convex mirrors. Establishes geometric vocabulary for mirror calculations.
Lesson 4 • Mirror System Aberrations
Identifies coma, astigmatism, and field curvature in mirror systems. Prepares students to evaluate and mitigate image quality degradation.
Lesson 5 • Parabolic and Aspherical Mirrors
Introduces parabolic mirrors to eliminate spherical aberration in reflective systems. Connects mirror shape to performance in telescopes and headlamps.
Chapter 3HideHide detailsSee detailsLenses and Refractive Optics
Lenses and Refractive Optics
Lesson 1 • Multi-Element Lens Systems
Combines multiple lenses using system matrix methods and equivalent lens formulas. Prepares students for camera, microscope, and telescope design.
Lesson 2 • Thin Lens Theory
Derives the thin lens equation from refraction at two surfaces. Establishes converging and diverging lens behaviour as the basis for optical instruments.
Lesson 3 • Thick Lens and Principal Planes
Extends thin lens theory to thick lenses using principal plane formalism. Enables accurate modelling of real lens elements in optical systems.
Lesson 4 • Lens Aberrations
Catalogues Seidel aberrations and their impact on image quality. Provides strategies for aberration correction through lens design choices.
Lesson 5 • Image Formation by Lenses
Applies the thin lens equation and ray diagrams to locate and characterise images. Covers all object-distance cases including virtual image formation.
Chapter 4HideHide detailsSee detailsWave Optics and Interference
Wave Optics and Interference
Lesson 1 • Interferometry and Measurement
Uses Michelson and Mach-Zehnder interferometers to measure optical path differences. Demonstrates precision measurement capabilities of wave optics.
Lesson 2 • Thin Film Interference
Applies optical path difference in thin films to predict reflected and transmitted colours. Directly relevant to anti-reflection and high-reflectance coating design.
Lesson 3 • Two-Source Interference
Derives constructive and destructive interference conditions for two coherent sources. Connects Young's double-slit experiment to wavelength measurement.
Lesson 4 • Multiple-Beam Interference
Extends two-beam analysis to Fabry-Perot etalons and their sharp transmission peaks. Introduces finesse and resolving power for spectroscopic applications.
Lesson 5 • Wave Description of Light
Formalises light as a transverse electromagnetic wave with amplitude, phase, and polarisation. Provides the mathematical foundation for interference and diffraction analysis.
Chapter 5HideHide detailsSee detailsDiffraction and Fourier Optics
Diffraction and Fourier Optics
Lesson 1 • Huygens-Fresnel Principle
Derives diffraction from secondary wavelet superposition using the Huygens-Fresnel integral. Establishes the theoretical basis for all diffraction calculations.
Lesson 2 • Optical Resolution Limits
Applies Rayleigh and Sparrow criteria to define resolution in imaging systems. Quantifies the trade-off between aperture size and resolving power.
Lesson 3 • Fraunhofer Diffraction Patterns
Calculates far-field diffraction for single slits, circular apertures, and gratings. Connects aperture geometry to intensity distribution in the focal plane.
Lesson 4 • Fourier Transform in Optics
Establishes the lens as a Fourier transform device operating on spatial frequencies. Enables spatial filtering and image processing analysis.
Lesson 5 • Spatial Filtering and Applications
Implements low-pass, high-pass, and phase filters in the Fourier plane. Demonstrates practical image enhancement and optical computing techniques.
Chapter 6HideHide detailsSee detailsPolarisation of Light
Polarisation of Light
Lesson 1 • Polarisation States and Representation
Defines linear, circular, and elliptical polarisation using Jones vectors and Stokes parameters. Provides the mathematical language for all polarisation analysis.
Lesson 2 • Polarisation by Reflection
Derives Brewster's angle and Fresnel reflection coefficients for s and p polarisations. Connects surface reflection to polarisation-based glare reduction.
Lesson 3 • Optical Activity and Applications
Analyses optical rotation in chiral media and electro-optic polarisation modulation. Applies polarisation control to liquid crystal displays and sensing systems.
Lesson 4 • Birefringence and Wave Plates
Explains birefringence in anisotropic crystals and its use in wave plates. Enables design of quarter-wave and half-wave retarders for polarisation control.
Lesson 5 • Polarizers and Analysers
Applies Malus's law to calculate transmitted intensity through polarisers. Covers wire-grid, dichroic, and thin-film polariser technologies.
Chapter 7HideHide detailsSee detailsOptical Instruments and System Design
Optical Instruments and System Design
Lesson 1 • Magnifiers and Eyepieces
Calculates angular magnification for simple magnifiers and compound eyepieces. Connects near-point distance to instrument magnification specifications.
Lesson 2 • Microscope Design and Performance
Combines objective and eyepiece to achieve high lateral magnification and resolution. Analyses numerical aperture, depth of field, and illumination requirements.
Lesson 3 • Human Eye and Visual Optics
Models the eye as an optical system with variable power and finite resolution. Establishes visual performance benchmarks for instrument design.
Lesson 4 • Camera Optics and Imaging Systems
Applies depth of field, f-number, and modulation transfer function to camera design. Connects optical performance to sensor requirements and image quality.
Lesson 5 • Telescope Design and Performance
Analyses refracting and reflecting telescope configurations for angular resolution and magnification. Covers Keplerian, Galilean, Cassegrain, and Newtonian designs.
Chapter 8HideHide detailsSee detailsLasers and Coherent Light Sources
Lasers and Coherent Light Sources
Lesson 1 • Laser Beam Shaping and Delivery
Applies beam expanders, spatial filters, and fibre coupling to condition laser output. Prepares students to integrate laser sources into complete optical systems.
Lesson 2 • Laser Types and Gain Media
Surveys solid-state, gas, semiconductor, and fibre laser architectures and their output characteristics. Guides source selection based on wavelength, power, and coherence needs.
Lesson 3 • Optical Resonator and Cavity Modes
Analyses Fabry-Perot resonator stability, longitudinal modes, and transverse modes. Connects cavity geometry to output beam spatial and spectral properties.
Lesson 4 • Stimulated Emission and Population Inversion
Derives Einstein A and B coefficients and the conditions for optical gain. Establishes population inversion as the prerequisite for laser action.
Lesson 5 • Gaussian Beam Propagation
Characterises Gaussian beam waist, divergence, and Rayleigh range using beam parameter equations. Enables accurate focusing and collimation calculations.
Your valid completion certificate
This course is for you:
Electrical engineers expanding into photonics and optical hardware development.
Physics graduates who want rigorous, application-focused optics training.
Mechanical engineers designing precision instruments with optical components.
R&D scientists who regularly work alongside optics teams and need fluency.
Imaging system developers seeking deeper theoretical grounding for their work.
Career changers from adjacent STEM fields entering the photonics industry.
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