DocumentCode :
1142354
Title :
40-Gb/s WDM transmission with virtually imaged phased array (VIPA) variable dispersion compensators
Author :
Ooi, Hiroki ; Nakamura, Kentaro ; Akiyama, Yuichi ; Takahara, Tomoo ; Terahara, Takafumi ; Kawahata, Yuichi ; Isono, Hideki ; Ishikawa, George
Author_Institution :
Fujitsu Labs. Ltd., Kawasaki, Japan
Volume :
20
Issue :
12
fYear :
2002
fDate :
12/1/2002 12:00:00 AM
Firstpage :
2196
Lastpage :
2203
Abstract :
We have demonstrated variable dispersion compensation by using a virtually imaged phased array (VIPA) to overcome the small dispersion tolerance in 40-Gb/s dense wavelength-division multiplexing (WDM) transmission systems. By utilizing the periodical characteristics of VIPA compensators, we performed simultaneous dispersion compensation in a 1.28-Tb/s (40-Gb/s×32 ch; C band) short-haul transmission and confirmed that only two VIPA compensators and one fixed dispersion-compensating fiber are required for a large transmission range of 80 km. This performance can greatly reduce the cost, size, and number of compensator menus in a 40-Gb/s WDM short-haul transmission system. In addition, we achieved 3.5-Tb/s (43-Gb/s×88 ch; C and L bands) transmission over a 600-km nonzero dispersion-shifted fiber by using VIPA compensators. Although channel-by-channel dispersion compensation is required due to the larger residual dispersion slope in long-haul transmission, the periodical characteristics of the VIPA compensators offer the advantage of considerably reducing the number of different modules required to cover the whole C (or L) band. An adequate optical signal-to-noise ratio, which was the same for all channels, was-obtained by using distributed Raman amplification, a gain equalizer, and a preemphasis technique. We achieved a Q-factor of more than 11.8 dB; (BER<10-17 with forward-error correction) for all 88 channels.
Keywords :
Q-factor; Raman lasers; error compensation; forward error correction; optical arrays; optical fibre amplifiers; optical fibre communication; optical fibre dispersion; optical noise; wavelength division multiplexing; 1.28 Tbit/s; 3.5 Tbit/s; 40 Gbit/s; 40-Gb/s WDM transmission; 600 km; 80 km; Q-factor; channel-by-channel dispersion compensation; dispersion tolerance; distributed Raman amplification; fixed dispersion-compensating fiber; forward-error correction; gain equalizer; long-haul transmission; nonzero dispersion-shifted fiber; optical signal-to-noise ratio; periodical characteristics; preemphasis technique; residual dispersion slope; short-haul transmission; simultaneous dispersion compensation; virtually imaged phased array variable dispersion compensators; Bit error rate; Costs; Equalizers; Optical arrays; Optical fiber communication; Optical fiber dispersion; Phased arrays; Signal to noise ratio; Stimulated emission; Wavelength division multiplexing;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2002.807779
Filename :
1178152
Link To Document :
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