Course: Experimental Laser and Nonlinear Optics

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Course title Experimental Laser and Nonlinear Optics
Course code SLO/EXLNO
Organizational form of instruction Lecture + Exercise
Level of course Master
Year of study not specified
Semester Winter
Number of ECTS credits 5
Language of instruction Czech
Status of course Compulsory-optional
Form of instruction Face-to-face
Work placements This is not an internship
Recommended optional programme components None
Lecturer(s)
  • Machulka Radek, Mgr. Ph.D.
  • Haderka Ondřej, prof. RNDr. Ph.D.
Course content
- Laser - principle of operation, regimes of generation, possibilities of pumping, the most used types of active media, nonlinear optics - phenomena of the second and the third order - Laser in continuous regime, modes and their relationship with the resonator, homogenous and inhomogeneous expansion, hole-burning, stability of the laser, multi-line, single-line and single-frequency operation of the laser, two-, three- and four-leveled model of the laser, description by means of speed equations, typical lasers - Laser in the regime of Q-switching, active and passive Q-switching, cavity dumping, laboratory demonstration, laser in the regime of synchronization of modes, active and passive modelocking, advanced methods of synchronization of modes, generation of ultrashort pulses, influence of dispersion on propagation of ultrashort pulses, Ti/sapphire amplifier, generation of white continuum - Nonlinear optics, susceptibility of the second and the third order, nonlinear optical crystals, phase synchronization, calculations of the orientation of the crystal for the interaction of type I and type II, optical and mechanical properties, generation of the second harmonics, extracavity and intracavity double lasers, compact systems (double DPSS lasers), optical parametric amplifier, laboratory demonstrations, measurement of ultrashort pulses, autocorrelation techniques, full characterization of the pulses, compression of ultrashort impulses - Generation of correlated photon pairs of type I and type II, properties of correlated pairs, SPCM and iCCD cameras, coincidence detection, statistics of number of photons, Hong-Ou-Mendel interferometer

Learning activities and teaching methods
Monologic Lecture(Interpretation, Training), Demonstration
  • Attendace - 39 hours per semester
  • Homework for Teaching - 20 hours per semester
  • Preparation for the Exam - 61 hours per semester
Learning outcomes
The subject presents experimental methods and laboratory devices for laser and nonlinear optics.
Comprehension Interpret Maxwell equations and Schrodinger equation in the context of laser and nonlinear optics, explain operation modes of laser, describe how to achieve the change in frequency of light by nonlinear optical processes, explain how to generate and analyze ultrashort light impulses.
Prerequisites
Not specified.

Assessment methods and criteria
Mark

Passing the oral examination
Recommended literature
  • Boyd, R. W. (2002). Nonlinear Optics. Academic Press; 2nd edition.
  • Dmitriev, V. G., Gurzadyan, G. G., Nikogosyan, D. N. (1999). Handbook of Nonlinear Optical Crystal. Springer.
  • Koechner, W. (1999). Solid state laser engineering. Springer.
  • Saleh, B.E.A., Teich, M.C. (1994). Základy fotoniky, sv. 3. Matfyzpress, Praha.
  • Shen, Y. R. (2002). The Principles of Nonlinear Optics. Wiley-Interscience.
  • Siegman, A. E. (1986). Lasers. University Science Books.


Study plans that include the course
Faculty Study plan (Version) Category of Branch/Specialization Recommended year of study Recommended semester
Faculty: Faculty of Science Study plan (Version): Applied Physics (2019) Category: Physics courses 1 Recommended year of study:1, Recommended semester: Winter
Faculty: Faculty of Science Study plan (Version): Optics and Optoelectronics (2021) Category: Physics courses 2 Recommended year of study:2, Recommended semester: Winter