DocumentCode :
1265797
Title :
40 Gb/s and 4×40 Gb/s TDM/WDM standard fiber transmission
Author :
Weinert, C.M. ; Ludwig, R. ; Pieper, W. ; Weber, H.G. ; Breuer, D. ; Petermann, K. ; Küppers, F.
Author_Institution :
Heinrich-Hertz-Inst. fur Nachrichtentech. Berlin GmbH, Germany
Volume :
17
Issue :
11
fYear :
1999
fDate :
11/1/1999 12:00:00 AM
Firstpage :
2276
Lastpage :
2284
Abstract :
We investigate the possibilities of 40 and 4×40 Gb/s time division multiplexing wavelength division multiplexing (TDM/WDM) return-to-zero (RZ) transmission over embedded standard single-mode fibers (SMF) at a transmission wavelength of 1.55 μm both experimentally and theoretically. Dispersion of the SMF is compensated by a dispersion compensating fiber (DCF). Transmission over a span of 150 km of SMF in the single-channel case and of 100 km SMF in the multichannel case are reported. Numerical calculations are employed to investigate the possibility of cascading the spans both for single-channel and multichannel transmission. For single-channel transmission, it is shown that optimum performance is achieved with postcompensation of the DCF. The input power at the SMF and DCF input have to be chosen carefully. For four channel transmission, the performance is mainly limited by residual dispersion in the outermost wavelength channels. It is shown numerically that improvement is achieved by employing the newest type DCF which also compensates the dispersion slope of the SMF. For a WDM channel separation of 2 nm no significant additional degradation due to cross-phase modulation (XPM) or four-wave mixing is observed
Keywords :
digital communication; error statistics; optical fibre communication; optical fibre dispersion; time division multiplexing; wavelength division multiplexing; 1.55 micron; 100 km; 150 km; 40 Gbit/s; BER; RZ transmission; TDM/WDM standard fiber transmission; bit error rate; dispersion compensating fiber; embedded standard single-mode fibers; four channel transmission; multichannel transmission; optimum performance; postcompensation; return-to-zero transmission; single-channel transmission; span cascading; time division multiplexing; wavelength division multiplexing; Degradation; Erbium-doped fiber amplifier; High speed optical techniques; Optical fiber communication; Optical fiber networks; Optical fiber polarization; Optical solitons; Polarization mode dispersion; Time division multiplexing; Wavelength division multiplexing;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/50.803020
Filename :
803020
Link To Document :
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