Title :
Transfer-matrix theory of the modulation and noise of multielement semiconductor lasers
Author :
Makino, Toshihiko
Author_Institution :
Bell-Northern Res., Ottawa, Ont., Canada
fDate :
11/1/1993 12:00:00 AM
Abstract :
A general theory of the modulation response and noise of multielement semiconductor lasers is presented based on a transfer-matrix method combined with the Green´s function method. An arbitrary laser structure is represented by an assemblage of stacked layers, each of which is assumed to have uniform carrier density and noise sources. A rate equation for the electric field envelope, with which analytical expressions for the small-signal modulation response and the intensity and FM noise are derived in terms of the transfer matrix elements, is derived. The theory can be applied to DFB (distributed feedback) and DBR (distributed Bragg reflector) lasers, coupled-cavity lasers, multielectrode lasers, vertical-cavity stacked-layer lasers, and Fabry-Perot lasers. One of the main advantages of this theory is that the longitudinal cavity effect is incorporated by a simple multiplication and summation of the transfer matrices corresponding to the individual laser segments
Keywords :
Green´s function methods; carrier density; distributed Bragg reflector lasers; distributed feedback lasers; frequency modulation; laser cavity resonators; laser theory; optical modulation; semiconductor device noise; semiconductor lasers; DBR lasers; DFB lasers; FM noise; Fabry-Perot lasers; Green´s function method; analytical expressions; coupled-cavity lasers; distributed Bragg reflector; distributed feedback; electric field envelope; intensity; longitudinal cavity effect; modulation response; multielectrode lasers; multielement semiconductor lasers; noise; rate equation; small-signal modulation response; stacked layer assemblage; transfer-matrix theory; uniform carrier density; vertical-cavity stacked-layer lasers; Assembly; Distributed Bragg reflectors; Distributed feedback devices; Green´s function methods; Laser feedback; Laser noise; Laser theory; Semiconductor device noise; Semiconductor lasers; Vertical cavity surface emitting lasers;
Journal_Title :
Quantum Electronics, IEEE Journal of