Title :
Modeling Interchannel FWM With Walk-Off in RZ-DPSK Single Span Links
Author :
Akhtar, Adnan ; Pavel, Lacra ; Kumar, Shiva
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Toronto, Toronto, ON
fDate :
7/15/2008 12:00:00 AM
Abstract :
An analytic model for interchannel four-wave mixing (FWM) is developed for return to zero differential phase shift keying (RZ-DPSK) single span transmission including interchannel walk-off for degenerate FWM (D-FWM) and nondegenerate FWM (ND-FWM). The model is verified by simulations and reasonable agreement is obtained for a 10-Gb/s single span link. Results are presented for different channel spacing, launch pulse duty-cycle, and launch power. The model is strictly valid for systems with low fiber dispersion as it ignores dispersion related pump pulse distortion. It is found that the walk-off effect makes a significant contribution to the detected unfiltered FWM noise and this contribution is mostly concentrated at high frequencies determined by the channel spacing alone. The contribution of the walk-off and its frequency content is understood in terms of intracollision and intercollision interference. In the typical situation when a sub-bit-rate electrical low-pass filter is used, the walk-off effect is effectively removed for all types of FWM. The analytic model is validated by comparing to split-step-Fourier (SSF) simulations. Extension to the general case of multiple FWM lines is considered. It is found that the FWM noise standard deviation is 2 times smaller for RZ-DPSK as compared to that for return to zero on-off keying (RZ-OOK) at the same average launch power for a system with 25-GHz channel spacing.
Keywords :
differential phase shift keying; interference (signal); multiwave mixing; optical fibre communication; optical fibre dispersion; optical links; RZ-DPSK; channel spacing; electrical low-pass filter; fiber dispersion; frequency 25 GHz; interchannel FWM; interchannel four-wave mixing; intercollision interference; intracollision interference; pump pulse distortion; return to zero differential phase shift keying; single span links; single span transmission; Bit error rate; Channel spacing; Differential phase shift keying; Four-wave mixing; Frequency; Modulation; Nonlinear distortion; Optical noise; Power system modeling; Signal to noise ratio; Four-wave mixing (FWM); nonlinear fiber optics; optical communication;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2008.920127