Title :
Compensation of higher order polarization-mode dispersion using phase modulation and polarization control in the transmitter
Author :
Yan, L.-S. ; Yu, Q. ; Luo, T. ; Willner, A.E. ; Yao, X. Steve
Author_Institution :
Dept. of Electr. Eng. Syst., Univ. of Southern California, Los Angeles, CA, USA
fDate :
6/1/2002 12:00:00 AM
Abstract :
We demonstrate a higher order polarization-mode dispersion (PMD) compensation scheme using a polarization controller and a phase modulator in the transmitter, as well as a traditional first-order compensator in the receiver. The effectiveness of this approach is experimentally demonstrated for a 10-Gb/s nonreturn-to-zero (NRZ) transmission over a link with an average PMD of 50 ps. Under this large PMD condition, the system power penalty can be reduced from /spl sim/4 dB that is achieved with a first-order compensator to 1 dB using the proposed technique. According to a reasonable outage criterion, simulation results show that the tolerance to average PMD for the 40-Gb/s NRZ system is improved to /spl sim/10 ps, as compared to the 7-ps value using only first-order PMD compensation. Such improvement may double the PMD-limited transmission distance.
Keywords :
compensation; optical fibre dispersion; optical fibre networks; optical fibre polarisation; optical modulation; optical transmitters; phase modulation; 10 ps; 10-Gb/s nonreturn-to-zero transmission; 40 Gbit/s; 40-Gb/s NRZ system; 50 ps; PMD-limited transmission distance; average PMD; first-order compensator; higher order polarization-mode dispersion compensation; large PMD condition; link; outage criterion; phase modulator; polarization controller; receiver; simulation results; system power penalty; tolerance; traditional first-order compensator; transmitter; Feedback loop; Optical feedback; Optical fiber communication; Optical fiber polarization; Optical receivers; Optical signal processing; Optical transmitters; Phase modulation; Polarization mode dispersion; System performance;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2002.1003117