DocumentCode
1517163
Title
Theoretical analysis of spectral hole burning and relaxation oscillation in all-optical gain stabilized multichannel erbium-doped fiber amplifier (EDFA)
Author
Bahrampour, Ali Reza ; Mahjoei, Mahyar
Author_Institution
Dept. of Phys., Vali-Asr Univ., Rafsandjan, Iran
Volume
19
Issue
8
fYear
2001
fDate
8/1/2001 12:00:00 AM
Firstpage
1130
Lastpage
1139
Abstract
The spectral hole burning effects and gain dynamics of all-optical gain clamped multichannel erbium-doped fiber amplifiers (EDFAs) are modeled. The two-level laser model is used to write the propagation and rate equations of the inhomogeneous laser medium. The governing equations are an uncountable system of partial differential equations (PDEs). After some mathematical manipulations, averaging over the fiber length and introducing an approximation method, the system of PDEs is converted to a finite system of ordinary differential equations (ODEs). The gain dynamics and hole burning of an all-optical stabilized multiwavelength EDFA and the transient response of an optical fiber inverter are analyzed by the solution of the system of ODEs. Theoretical results are in good agreement with the published experimental result
Keywords
erbium; laser feedback; optical communication equipment; optical fibre amplifiers; optical hole burning; partial differential equations; telecommunication channels; transient response; wavelength division multiplexing; all-optical gain clamped multichannel erbium-doped fiber amplifiers; all-optical gain stabilized multichannel erbium-doped fiber amplifier; approximation method; fiber length; gain dynamics; governing equations; hole burning; inhomogeneous laser medium; optical fiber inverter; ordinary differential equations; partial differential equations; propagation equations; rate equations; relaxation oscillation; spectral hole burning; transient response; two-level laser model; Approximation methods; Differential equations; Erbium-doped fiber amplifier; Erbium-doped fiber lasers; Laser modes; Laser theory; Optical fibers; Optical propagation; Partial differential equations; Spectral analysis;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/50.939793
Filename
939793
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