Course detail
Fundaments of Optics
FSI-TZOAcad. year: 2022/2023
In the course basic principles of geometrical and wave optics are presented. Particular attention is paid to applications, especially to design of optical systems.
Contents of the course: light as electromagnetic radiation; the basic phenomena of wave optics; light propagation in an isotropic medium; fundamental laws of geometrical optics; basic optical systems; optics of anisotorpic media; light sources.
Language of instruction
Number of ECTS credits
Mode of study
Guarantor
Department
Learning outcomes of the course unit
Prerequisites
Co-requisites
Planned learning activities and teaching methods
Assesment methods and criteria linked to learning outcomes
Active participation in tutorials (75%) and two written tests. Examination: written test and oral examination.
Course curriculum
Work placements
Aims
Specification of controlled education, way of implementation and compensation for absences
Recommended optional programme components
Prerequisites and corequisites
Basic literature
Hecht, E.: Optics. Pearson, 2017.
Malý. P.: Optika. Univerzita Karlova v Praze, Karolinum. 2013
Recommended reading
Haferkorn, H. - Richter, W.: Synthese optischer systeme. Berlin: VEB Deutscher Verlag, 1984.
Klein, M.V.: Optics. New York: Wiley, 1970.
Liška, M.: Optické sešity. (Texty k přednáškám.) BRNO: VUT 2014/ 2015.
Elearning
Classification of course in study plans
- Programme B-FIN-P Bachelor's 3 year of study, winter semester, compulsory
- Programme N-PMO-P Master's 1 year of study, winter semester, compulsory-optional
- Programme N-STG-P Master's
specialization MTS , 1 year of study, winter semester, compulsory
- Programme LLE Lifelong learning
branch CZV , 1 year of study, winter semester, compulsory-optional
Type of course unit
Lecture
Teacher / Lecturer
Syllabus
- Light as electromagnetic radiation. The wave function, superposition. Planar, cylindrical and spherical waves. Harmonic waves. Complex notation of harmonic waves. Maxwell equations. Wave energy.
- Polarization of light. Types of polarization. Description of polarization by means of harmonic functions and Jones vectors. Principles of light polarization. Optical activity.
- Optics of anisotropic media. Propagation of light in anisotropic media. Refractive index ellipsoid. Uniaxial and biaxial crystals. Polarization elements based on anisotropy.
- Foundations of geometrical optics. Eiconal equation, ray equation, Fermat principle, derivation of the law of refraction. Propagation of light. Scattering, reflection, refraction. Glass, dispersion, rainbow, prisms, mirrors.
- Geometrical theory of imaging. Paraxial space. Spherical boundary, lenses, mirrors. Cardinal points of the optical system, graphical solution of imaging.
- Matrix optics.
- Limitation of a ray packet in an optical system. Apertures types and their usage. Telecentric systems, resolution.
- Optical aberrations I - chromatic aberration, aberation function, Seidel aberrations, spherical aberration, coma.
- Optical aberrations II - astigmatism, curvature of field, correction. Matrix representacion, ray tracing.
- Basic optical systems. Eye. Microscopes.Telescopes. Spectrometers.
- Foundation of the theory of interference and coherence. Conditions of coherence. Interference law for two partially coherent waves.
- Two-beam and multiple-beam interference. Examples.
- Basics of the light diffraction theory. Huygens-Fresnel principle. Fresnel and Fraunhofer diffraction. Examples.
Laboratory exercise
Teacher / Lecturer
Syllabus
2. Diffraction
3. Goniometer
4. Thick lenses properties
5. Photometry
6. Fiber optics
7. Speed of light
8. Basic optical instruments
9. Liquid crystal display
10. Interference
Exercise
Teacher / Lecturer
Syllabus
1. Maxwell's equation. Differential operators.
2. Wave equation and its solutions. Helmoltz equation.
3. Polarisation of light. Malus law.
4. Eikonal equation derivation. Solutions of the ray equation for simple media.
5. Fresnel formulae.
6. Description of an optical system by cardinal points and calculation of the parameters and properties of the system.
7. Imaging by means of mirrors, thin and thick lenses.
8. Chromatic and spherical aberration.
9. Basic optical instruments - examples.
10. Test.
11. Wave optics - interference.
12. Fraunhofer diffraction at apertures of various forms.
13. Test.
Elearning