DocumentCode
1457727
Title
Spatially independent VCSEL models for the simulation of diffusive turn-off transients
Author
Morikuni, J.J. ; Mena, P.V. ; Harton, A.V. ; Wyatt, K.W. ; Kang, S.-M.
Author_Institution
Corp. R&D, Motorola Inc., Schaumburg, IL, USA
Volume
17
Issue
1
fYear
1999
fDate
1/1/1999 12:00:00 AM
Firstpage
95
Lastpage
102
Abstract
Carrier diffusion and spatial hole burning can have a severe impact on vertical cavity surface emitting laser (VCSEL) performance. In particular, these phenomena can produce secondary pulses, bumps, and optical tails in the VCSEL turn-off transient which limit both the system bit rate and the bit error rate (BER). To study these effects, laser rate equation models that include both spatial and temporal dependence are often employed; however, simulations which require discretization of both space and time, while accurate, typically consume vast amounts of computational power. In this paper, we demonstrate that models based on well-accepted spatially independent rate equations can be used to simulate these effects. These models exhibit the advantages of the full spatio-temporal approach but execute much more quickly. We also integrate these models into electronic computer-aided design (CAD) tools which will enable circuit and system designers to simultaneously simulate electrical and optical performance
Keywords
CAD; carrier mobility; diffusion; optical hole burning; semiconductor device models; semiconductor lasers; surface emitting lasers; transients; CAD; VCSEL turn-off transient; bit error rate; carrier diffusion; computer-aided design; diffusive turn-off transients simulation; discretization; full spatio-temporal approach; laser rate equation models; optical tails; secondary pulses; spatial dependence; spatial hole burning; spatially independent VCSEL models; system bit rate; temporal dependence; vertical cavity surface emitting laser; well-accepted spatially independent rate equations; Bit error rate; Circuit simulation; Computational modeling; Design automation; Equations; Laser modes; Optical pulses; Power system modeling; Surface emitting lasers; Vertical cavity surface emitting lasers;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/50.737427
Filename
737427
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