Title :
Time-domain modeling of mode suppression in 1.3-μm Fabry-Perot lasers
Author :
Kozlowski, D.A. ; Young, S. ; Plumb, S. ; England, J.M.C.
Author_Institution :
Dept. of Eng., Cambridge Univ., UK
fDate :
6/1/1996 12:00:00 AM
Abstract :
Fabry-Perot lasers still comprise the bulk of lasers used in optical fiber systems. The spectral envelope, of the Fabry-Perot modes, can be modulated either deliberately or as a consequence of processing stages. This can be beneficial, in the case of modal sculpturing where specific Fabry-Perot modes are suppressed, or a hindrance in the case of poor devices. A time-domain model is used to model 1.3-μm Fabry-Perot lasers. Simulated power conserving reflective sites are introduced between sections in the model to simulate the effect of reflective sites from etch pits on the output characteristics of real lasers. Spectral modulation of the laser output is reported in agreement with previous experimental results and the strength of reflections required is investigated. We also report the use of the model to investigate the effect of fiber dispersion on the modulated laser output with different spectral mode modulation.
Keywords :
Fabry-Perot resonators; electro-optical modulation; laser cavity resonators; laser modes; laser theory; optical communication equipment; optical fibre dispersion; reflectivity; semiconductor device models; semiconductor lasers; time-domain analysis; 1.3 mum; 1.3-/spl mu/m Fabry-Perot lasers; Fabry-Perot mode suppression; Fabry-Perot modes; communications laser diodes; fiber dispersion; modal sculpturing; mode suppression; modulated laser output; optical fiber systems; output characteristics; power conserving reflective sites; spectral envelope; spectral mode modulation; spectral modulation; time-domain model is; time-domain modeling; Etching; Fabry-Perot; Fiber lasers; Laser modes; Optical fiber dispersion; Optical fibers; Optical reflection; Power lasers; Power system modeling; Time domain analysis;
Journal_Title :
Photonics Technology Letters, IEEE