DocumentCode :
1186572
Title :
Study of wavelength shift in InGaAs/InAlGaAs QW DFB lasers based on laser parameters from a comparison of experiment and theory
Author :
Hillmer, Hartmut ; Hansmann, S. ; Burkhard, Herbert ; Walter, Herbert ; Krost, Alois ; Bimberg, Dieter
Author_Institution :
Deutsche Telekom, Forschungs- & Technol., Darmstadt, Germany
Volume :
30
Issue :
10
fYear :
1994
fDate :
10/1/1994 12:00:00 AM
Firstpage :
2251
Lastpage :
2261
Abstract :
Experimental data of InGaAs/InAlGaAs quantum well distributed feedback (DFB) lasers such as spectra, under continuous and pulsed biasing, relative intensity noise and linewidth, are compared with the results of model calculations based on a transfer matrix method. Using experimental data of different lasers, a set of physical DFB laser parameters was determined. We succeeded in describing all the experimental data of different lasers by the same set. The determined parameter set was further applied to study the influence of facet properties on the wavelength shift of DFB lasers. We found a very strong dependence of the wavelength tunability on the end facet phases. The wavelength shift varies by a factor up to three between different end facet phases and coatings. This is crucial for the yield of, for example, tunable multisection DFB lasers with an envisaged large tuning range
Keywords :
III-V semiconductors; distributed feedback lasers; gallium arsenide; indium compounds; laser tuning; optical films; semiconductor device noise; semiconductor lasers; DFB laser parameters; DFB lasers; InGaAs-InAlGaAs; InGaAs/InAlGaAs QW DFB lasers; InGaAs/InAlGaAs quantum well distributed feedback lasers; coatings; end facet phases; facet properties; large tuning range; laser parameters; linewidth; model calculations; pulsed biasing; relative intensity noise; spectra; transfer matrix method; tunable multisection DFB lasers; wavelength shift; wavelength tunability; Coatings; Distributed feedback devices; Indium gallium arsenide; Laser feedback; Laser modes; Laser noise; Laser theory; Laser tuning; Optical pulses; Quantum well lasers;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/3.328602
Filename :
328602
Link To Document :
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