Title :
Influence of a nonuniform coupling coefficient on the static and large signal dynamic behavior of Bragg-detuned DFB lasers
Author :
Fessant, Thierry
Author_Institution :
Lab. RESO, Ecole Nat. d´´Ingenieurs de Brest, France
fDate :
3/1/1998 12:00:00 AM
Abstract :
A time domain model is used to study the large signal dynamics of general Bragg-detuned cavities. Such structures, in which the grating pitch is spatially nonuniform so that a distributed phase shift is produced along the cavity, are often called corrugation-pitch-modulated distributed feedback lasers (CPM-DFB). Furthermore, by introducing a longitudinally dependent coupling coefficient κ, a corrugation-pitch-modulated distributed-coupling-coefficient DFB laser (CPM-DCC-DFB) with quite different spectral properties can be realized. We present in this paper a comparison between these two kinds of components. It is shown that an adequate profile of the coupling coefficient (stronger coupling at the center of the cavity) in a CPM-DCC-DFB structure can help to achieve better steady-state singlemode operation with respect to conventional CPM-DFB lasers (uniform coupling coefficient). However, in CPM-DCC-DFB lasers, side modes are liable to be excited during the turn-on transient interval, thus imposing a limitation to the modulation depth requirement
Keywords :
distributed feedback lasers; dynamics; electro-optical modulation; laser cavity resonators; laser theory; laser tuning; semiconductor device models; semiconductor lasers; time-domain analysis; Bragg-detuned DFB lasers; CPM-DCC-DFB structure; corrugation-pitch-modulated distributed feedback lasers; corrugation-pitch-modulated distributed-coupling-coefficient DFB laser; coupling coefficient; distributed phase shift; general Bragg-detuned cavities; grating pitch; large signal dynamic behavior; large signal dynamics; longitudinally dependent coupling coefficient; modulation depth requirement; nonuniform coupling coefficient; spatially nonuniform; time domain model; turn-on transient interval; uniform coupling coefficient; Bragg gratings; Distributed feedback devices; Laser excitation; Laser feedback; Laser modes; Laser stability; Optical coupling; Semiconductor lasers; Steady-state; Transient analysis;
Journal_Title :
Lightwave Technology, Journal of