Title :
Experimental Demonstrations of All-Optical Phase-Multiplexing Using FWM-Based Phase Interleaving in Silica and Bismuth-Oxide HNLFs
Author :
Lu, Guo-Wei ; Abedin, Kazi Sarwar ; Miyazaki, Tetsuya
Author_Institution :
Nat. Inst. of Inf. & Commun. Technol., Tokyo
Abstract :
We propose an all-optical phase-interleaving technology based on dual-pump four-wave mixing (FWM) in highly nonlinear fiber (HNLF). The proposed all-optical phase-interleaving technology is applied in an all-optical phase-multiplexing scheme to successfully phase-multiplex 2times or 3 times 10-Gb/s DPSK-WDM signals to a 20- or 30-Gb/s DPSK in non-return-to-zero (NRZ) formats. The proposed all-optical phase multiplexing scheme is demonstrated using dual-pump FWM in highly nonlinear silica and bismuth fibers. In contrast with optical time-division multiplexing technology, the proposed all-optical phase-multiplexing technology does not require pulse-carving, thus offering a high spectral-efficiency. Differential precoder for each input tributary is operated independently, and no additional encoder or postcoder is required to recover the original data after demodulation on the receiver side.
Keywords :
bismuth compounds; demodulation; differential phase shift keying; multiwave mixing; optical fibre communication; optical information processing; optical modulation; silicon compounds; time division multiplexing; wavelength division multiplexing; Bi2O3; DPSKsignal; FWM; HNLF; SiO2; WDM signal; all-optical phase-interleaving technology; all-optical phase-multiplexing technology; bismuth fiber; bit rate 10 Gbit/s; bit rate 20 Gbit/s; bit rate 30 Gbit/s; differential precoder; dual-pump four-wave mixing; highly nonlinear fiber; nonreturn-to-zero format; optical time-division multiplexing; pulse-carving; Bismuth; Differential quadrature phase shift keying; Fiber nonlinear optics; Four-wave mixing; Interleaved codes; Nonlinear optics; Optical mixing; Optical receivers; Optical signal processing; Silicon compounds; All-optical signal processing; four-wave mixing (FWM); multiplexing; phase modulation;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2008.928962