DocumentCode :
1218602
Title :
Static and dynamic simulation for ridge-waveguide MQW DFB lasers
Author :
Hong, Jonggi ; Huang, W.-P. ; Makino, T.
Author_Institution :
Adv. Technol. Lab., Bell-Northern Res., Ottawa, Ont., Canada
Volume :
31
Issue :
1
fYear :
1995
fDate :
1/1/1995 12:00:00 AM
Firstpage :
49
Lastpage :
59
Abstract :
An efficient and versatile computer-aided simulator for the design and analysis of ridge-waveguide (RWG) multiple-quantum-well (MQW) distributed-feedback (DFB) lasers has been developed and is presented. This simulator combines spectral index method and Green´s function-based transfer-matrix method (TMM) to deal with the transverse RWG MQW structure and longitudinal DFB structure, respectively. It is capable of simulating both static and dynamic behaviors for a variety of RWG MQW DFB lasers. The major difference from most of the existing models and analyses is that this simulator is capable of linking important device characteristics with practical material and geometrical parameters directly and self-consistently. For instance, the effects of lateral ridge width, vertical MQW layers and longitudinal nonuniformity are all explicitly included in the simulator. important laser characteristics, such as L-I curve, effective linewidth enchancement factor, static lasing wavelength shift, spectral linewidth, facet-power spectrum, AM and FM modulation responses, dynamic-wavelength chirping, as well as longitudinal photon and carrier distribution, can be predicted based on material and waveguide parameters. Therefore, this simulator may be used as an efficient and versatile tool for the systematic exploitation and optimization of a wide range of practical RWG MQW DFB lasers. Analysis of a λ/4 shifted SCH RWG MQW DFB laser is performed to illustrate the capability of this simulator
Keywords :
Green´s function methods; amplitude modulation; distributed feedback lasers; laser theory; optical modulation; optimisation; quantum well lasers; ridge waveguides; simulation; spectral line breadth; Green´s function-based transfer-matrix method; L-I curve; RWG MQW DFB lasers; device characteristics; dynamic behaviors; dynamic simulation; effective linewidth enchancement factor; geometrical parameters; laser characteristics; lateral ridge width; longitudinal DFB structure; longitudinal nonuniformity; ridge-waveguide MQW DFB lasers; ridge-waveguide multiple-quantum-well distributed-feedback lasers; self-consistently; spectral index method; spectral linewidth; static behaviors; static lasing wavelength shift; static simulation; versatile computer-aided simulator; vertical MQW layers; Analytical models; Computational modeling; Computer simulation; Distributed computing; Laser modes; Optical design; Optical materials; Quantum well devices; Solid modeling; Waveguide lasers;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/3.341707
Filename :
341707
Link To Document :
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