DocumentCode :
2946295
Title :
Microscopic physics-based interactive semiconductor laser simulator
Author :
Moloney, J.V. ; Kolesik, M. ; Matus, M. ; Hader, J. ; Koch, S.W.
Author_Institution :
Dept. of Math., Arizona Univ., Tucson, AZ, USA
fYear :
2000
fDate :
10-15 Sept. 2000
Abstract :
Summary form only given. Experimentally validated rigorous microscopic many-body calculations of semiconductor gain and refractive index spectra for a wide variety of quantum well structures provide the foundation on which we build a full scale space-time interactive simulation model of both low and high power semiconductor lasers. The simulation model is extremely flexible utilizing look-up tables generated for a particular QW structure with confinement barriers (GRINSCH, SCH). The ability now exists to design and optimize laser structures starting from the same level as the materials grower. We explicitly illustrate the occurrence of dynamic intensity filamentation in high power laser diodes and discuss the means to suppress such behavior using current/index profiling, cavity spoilers, flared contacts etc. As an illustration of low power instabilities, we discuss the stimulation of isolated multi-longitudinal mode beatings in the presence of an external feedback mirror, power dropouts in DFB and regular lasers and synchronization of high dimensional chaotic oscillations between a transmitter and receiver laser system.
Keywords :
C++ language; distributed feedback lasers; gradient index optics; graphical user interfaces; laser beams; laser cavity resonators; laser feedback; laser mirrors; laser modes; laser stability; optical chaos; optical receivers; optical transmitters; oscillations; physics computing; quantum well lasers; semiconductor lasers; synchronisation; DFB lasers; GRINSCH barrier; SCH barrier; cavity spoilers; confinement barriers; current profiling; dynamic intensity filamentation; external feedback mirror; flared contacts; full scale space-time interactive simulation model; high dimensional chaotic oscillations; high power laser diodes; high power semiconductor lasers; index profiling; interactive semiconductor laser simulator; isolated multi-longitudinal mode beatings; laser structures; look-up tables; low power instabilities; low power semiconductor lasers; many-body calculations; microscopic physics-based interactive semiconductor laser simulator; power dropouts; quantum well structures; receiver laser system; refractive index spectra; regular lasers; semiconductor gain; semiconductor laser simulator; simulation model; synchronization; transmitter laser system; Design optimization; Laser feedback; Laser modes; Laser theory; Microscopy; Optical design; Power lasers; Quantum well lasers; Refractive index; Semiconductor lasers;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Lasers and Electro-Optics Europe, 2000. Conference Digest. 2000 Conference on
Conference_Location :
Nice
Print_ISBN :
0-7803-6319-1
Type :
conf
DOI :
10.1109/CLEOE.2000.909727
Filename :
909727
Link To Document :
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