DocumentCode :
759552
Title :
A global stability analysis for symmetric self-electrooptic effect device systems using a potential function method
Author :
Hosoda, M. ; Kawashima, K. ; Tominaga, K. ; Watanabe, T. ; Fujiwara, K.
Author_Institution :
ATR Opt. & Radio Commun. Res. Labs., Kyoto, Japan
Volume :
31
Issue :
5
fYear :
1995
fDate :
5/1/1995 12:00:00 AM
Firstpage :
954
Lastpage :
961
Abstract :
This paper proposes a novel analytical method for use in symmetric self-electrooptic effect device (S-SEED) systems, called the potential function method, based on a global stability analysis of differential equations for photocurrent in S-SEED circuits. The method provides intuitive views for analyzing the stability of the system, and is useful for tracking the temporal dynamics of S-SEED nonlinear electrical circuits. This paper also describes electro-absorption characteristics of SEED´s, especially those based on Wannier Stark localization (WSL). In this type of SEED, the photocurrent versus reverse bias voltage characteristics has multiple peaks and multiple negative differential resistance regions, resulting from Stark ladder transitions due to thin barrier superlattices. Various types of stabilities, including the metastable state, as well as the temporal switching dynamics of WSL-S-SEEDs, can be explained clearly by using this potential function method
Keywords :
SEEDs; Stark effect; differential equations; electroabsorption; integrated optoelectronics; metastable states; photoconductivity; semiconductor device models; semiconductor quantum wells; semiconductor superlattices; stability; S-SEED circuits; S-SEED nonlinear electrical circuits; Stark ladder transitions; Wannier Stark localization; bias voltage characteristics; differential equations; electro-absorption characteristics; global stability analysis; metastable state; multiple negative differential resistance regions; multiple peaks; photocurrent; potential function method; stabilities; symmetric self-electrooptic effect device; temporal dynamics; temporal switching dynamics; thin barrier superlattices; Circuits; Metastasis; Nonlinear optics; Optical bistability; Optical interconnections; Optical sensors; Optical signal processing; Optical superlattices; Photoconductivity; Stability analysis;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/3.375942
Filename :
375942
Link To Document :
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