DocumentCode
1505073
Title
Bi-end dispersion compensation for ultralong optical communication system
Author
Wen, Senfar
Author_Institution
Dept. of Electr. Eng., Chung Hua Univ., Hsinchu, Taiwan
Volume
17
Issue
5
fYear
1999
fDate
5/1/1999 12:00:00 AM
Firstpage
792
Lastpage
798
Abstract
Bi-end dispersion compensation (DC) for ultralong nonreturn-to-zero (NRZ) optical transmission system is studied. Both the loss and dispersion of the transmission fiber are periodically compensated. Two dispersive elements are placed at the input and output ends of a compensation period, respectively, to compensate for fiber dispersion. The pulse compression owing to self-phase modulation (SPM) can be adjusted by the compensation ratios of the dispersive elements at the two ends of a compensation period. Therefore, the pulse compression can be optimized and the system performance can be improved to compare with the system with either pre- or postdispersion compensation. The rules to design the system are considered. The transmission system of 10-Gb/s bit rate, 9000-km transmission distance, and 100-km compensation period is taken as an example. The second-order fiber dispersion is assumed to be completely compensated. Wave equation is numerically solved to study the system performance which is represented by Q factor. The relations of several system parameters and Q factor are studied. The system parameters include the compensation ratios of the dispersive elements at the two ends of a compensation period, dispersion of transmission fiber, signal power, and the compensation ratios of third-order fiber dispersion. If the third-order fiber dispersion cannot be completely compensated, it is found that one can use a higher signal power to improve the system performance
Keywords
compensation; optical fibre communication; optical fibre dispersion; optical pulse compression; self-phase modulation; 10 Gbit/s; 100 km; 9000 km; Q factor; bi-end fibre dispersion compensation; compensation period; compensation ratios; dispersive elements; periodically compensated; postdispersion compensation; pulse compression; second-order fiber dispersion; self-phase modulation; system performance; third-order fiber dispersion; transmission distance; ultralong nonreturn-to-zero optical transmission system; ultralong optical communication system; wave equation; Dispersion; Fiber nonlinear optics; Nonlinear optics; Optical fiber communication; Optical fiber losses; Optical modulation; Optical pulse compression; Optical signal processing; Q factor; System performance;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/50.762893
Filename
762893
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