DocumentCode
1534393
Title
Spatio-temporal dynamics of light amplification and amplified spontaneous emission in high-power tapered semiconductor laser amplifiers
Author
Gehrig, Edeltraud ; Hess, Ortwin
Author_Institution
Theor. Quantum Electron., DLR Inst. of Tech. Phys., Stuttgart, Germany
Volume
37
Issue
10
fYear
2001
fDate
10/1/2001 12:00:00 AM
Firstpage
1345
Lastpage
1355
Abstract
We investigate the spatio-temporal light field dynamics in high-power semiconductor lasers with continuous-wave optical injection. The amplification processes that characterize this system occur during the propagation of the injected signal within the active area and can be attributed to spatially dependent gain and refractive index variations. Those are shown to be determined by dynamic interactions between the light fields and the active charge-carrier plasma. This microscopic light-matter-coupling is described by a spatially resolved microscopic theory based on Maxwell-Bloch-Langevin equations taking into account many-body interactions, energy transfer between the carrier and phonon system and, in particular, the spatio-temporal interplay of stimulated and amplified spontaneous emission and noise. Results of our numerical modeling visualize the dynamic spatio-spectral beam shaping experienced by the propagating light in amplifiers of tapered geometry. This reveals the microscopic physical processes that are responsible for the particular amplitude and spatial shape of the light beam at the output facet
Keywords
electron-phonon interactions; laser beams; laser noise; laser theory; quantum well lasers; refractive index; semiconductor optical amplifiers; superradiance; InGaAs-GaAs; Maxwell-Bloch-Langevin equations; active area; active charge-carrier plasma; amplified spontaneous emission; carrier phonon system energy transfer; continuous-wave optical injection; dynamic interactions; dynamic spatio-spectral beam shaping; high-power tapered semiconductor laser amplifiers; injected signal propagation; light amplification; light beam amplitude; light beam spatial shape; many-body interactions; microscopic light-matter-coupling; noise; numerical modeling; refractive index variations; spatially dependent gain; spatially resolved microscopic theory; spatio-temporal dynamics; spatio-temporal light field dynamics; Energy resolution; Microscopy; Optical propagation; Optical refraction; Optical variables control; Plasmas; Refractive index; Semiconductor lasers; Signal processing; Stimulated emission;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/3.952547
Filename
952547
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