DocumentCode :
1000429
Title :
Effective channel allocation to reduce inband FWM crosstalk in DWDM transmission systems
Author :
Bogoni, Antonella ; Potì, Luca
Author_Institution :
Photonic Networks Nat. Lab., Pisa, Italy
Volume :
10
Issue :
2
fYear :
2004
Firstpage :
387
Lastpage :
392
Abstract :
An accurate analysis of the four-wave mixing (FWM) impact on dense wavelength-division multiplexing optical systems is carried out for different types of fibers. Particular channel allocations on the ITU grid are studied to reduce the inband FWM crosstalk and guarantee high performances in different types of optical fiber. These schemes, with respect to the other known channel allocations, allow one to find an optimum tradeoff between the required bandwidth expansion and the maximum inband FWM crosstalk. A comparison between the system spectral occupation and the signal-to-crosstalk ratio (SXR) versus the channel input power for the equal channel spacing and the proposed channel allocations validates the proposed solutions in the case of single-mode, nonzero dispersion-shifted, and dispersion-shifted fiber. For a 32-channel system, SXR improvements up to 4 dB without bandwidth expansion, and bandwidth savings up to 15 nm with a guaranteed minimum SXR of 25 dB, are obtained with respect to an equally spaced channel allocation.
Keywords :
channel allocation; channel spacing; multiwave mixing; optical crosstalk; optical fibre communication; optical fibre dispersion; wavelength division multiplexing; 32-channel system; DWDM transmission systems; ITU grid; bandwidth expansion; channel allocation; channel spacing; dense wavelength-division multiplexing optical systems; dispersion-shifted fiber; four-wave mixing; inband FWM crosstalk reduction; optical fiber; signal-to-crosstalk ratio; single-mode fiber; system spectral occupation; Bandwidth; Channel allocation; Channel spacing; Fiber nonlinear optics; Four-wave mixing; Optical crosstalk; Optical fiber dispersion; Optical fibers; Optical mixing; Wavelength division multiplexing; Fiber-optic transmission systems; four-wave mixing effect; unequal channel spacing;
fLanguage :
English
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
1077-260X
Type :
jour
DOI :
10.1109/JSTQE.2004.825952
Filename :
1303587
Link To Document :
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