DocumentCode :
1098469
Title :
Traveling wave analysis of semiconductor lasers: modulation responses, mode stability and quantum mechanical treatment of noise spectra
Author :
Tromborg, Bjarne ; Lassen, Hans Erik ; Olesen, Henning
Author_Institution :
Tele Danmark Res., Horsholm, Denmark
Volume :
30
Issue :
4
fYear :
1994
fDate :
4/1/1994 12:00:00 AM
Firstpage :
939
Lastpage :
956
Abstract :
We present a traveling wave analysis of a general class of semiconductor lasers, which includes multisection DFB/DBR lasers and gain-coupled DFB lasers. The analysis leads to new semianalytic expressions for the small-signal IM and FM modulation responses, the intensity and FM noise spectra, and the linewidth. The expressions are given in terms of solutions to four coupled linear homogeneous differential equations and can easily be evaluated numerically. We also derive a stability parameter σ, for which σ<0 indicates that the mode is unstable with respect to small-scale fluctuations. The noise spectra are derived from semiclassical calculations as well as from calculations based on quantized fields, and we discuss the limitations of the semiclassical approach. The formalism of the quantum mechanical treatment has a built-in relationship between the relative intensity noise and the noise of the injection current. This relationship is discussed and illustrated by numerical examples
Keywords :
distributed Bragg reflector lasers; distributed feedback lasers; laser theory; optical modulation; semiconductor device noise; semiconductor lasers; FM modulation responses; FM noise spectra; coupled linear homogeneous differential equations; gain-coupled DFB lasers; injection current noise; linewidth; mode stability; modulation responses; multisection DFB/DBR lasers; noise spectra; numerical examples; quantized fields; quantum mechanical treatment; relative intensity noise; semianalytic expressions; semiclassical approach; semiclassical calculations; semiconductor lasers; small-scale fluctuations; small-signal IM modulation responses; stability parameter; traveling wave analysis; Charge carrier density; Equations; Laser modes; Laser noise; Laser stability; Laser theory; Laser tuning; Semiconductor device noise; Semiconductor lasers; Stability analysis;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/3.291365
Filename :
291365
Link To Document :
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