DocumentCode :
834824
Title :
Modelling and simulation of electroabsorption modulators
Author :
Wiedenhaus, M. ; Ahland, A. ; Schulz, D. ; Voges, E.
Author_Institution :
Lehrstuhl fur Hochfrequenztech., Dortmund Univ., Germany
Volume :
149
Issue :
4
fYear :
2002
fDate :
8/1/2002 12:00:00 AM
Firstpage :
122
Lastpage :
130
Abstract :
A synopsis of different methods of modelling electroabsorption modulators based on multiple quantum wells (MQW) is given. It contains two algorithms which are based on the density matrix formalism. A first estimation of the spectral absorption of the quantum wells is gained by expanding the excitonic states in terms of sub-band states. Another efficient and more appropriate model is the direct solution of the density matrix using a perfectly matched layer (PML) absorber to limit the calculation domain. A drift-diffusion model self-consistently corrected by the Bohm potential describes the quantum transport properties. The exciton equation and the transport model are iteratively coupled and, thus, account for nonlinear, carrier-dependent effects. The model includes bound and unbound states, avoids the Kramers-Kronig. relation and considers important effects contributing to electroabsorption, such as the Franz-Keldysh effect, the Wannier-Stark effect and the quantum-confined Stark effect. The time-dependent problem is solved by implicit, rather than by explicit algorithms as the latter demand very restrictive stability conditions
Keywords :
diffusion; electro-optical modulation; electroabsorption; excitons; iterative methods; matrix algebra; quantum confined Stark effect; semiconductor device models; semiconductor quantum wells; Bohm potential; Franz-Keldysh effect; Kramers-Kronig. relation; MQW; Wannier-Stark effect; bound states; calculation domain; carrier-dependent effects; density matrix; density matrix formalism; direct solution; drift-diffusion model; electroabsorption; electroabsorption modulator simulation models; exciton equation; excitonic states; explicit algorithms; iteratively coupled; multiple quantum wells; perfectly matched layer absorber; quantum transport properties; quantum-confined Stark effect; restrictive stability conditions; spectral absorption; sub-band states; time-dependent problem; transport model; unbound states;
fLanguage :
English
Journal_Title :
Optoelectronics, IEE Proceedings -
Publisher :
iet
ISSN :
1350-2433
Type :
jour
DOI :
10.1049/ip-opt:20020529
Filename :
1039378
Link To Document :
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