Title :
Generation of optical phase-conjugate waves and compensation for pulse shape distortion in a single-mode fiber
Author :
Watanabe, Shigeki ; Ishikawa, George ; Naito, Takao ; Chikama, Terumi
Author_Institution :
Optoelectron. Syst. Lab., Fujitsu Labs. Ltd., Kawasaki, Japan
fDate :
12/1/1994 12:00:00 AM
Abstract :
The generation of optical phase-conjugate waves and the application of optical phase conjugation (OPC) to optical communication systems is described. The method of pulse shape distortion compensation by OPC is outlined including distortion due to both fiber dispersion and the optical Kerr effect. The generation of a forward-going phase-conjugate wave in a third-order nonlinear medium is discussed and that by a nondegenerate forward four-wave mixing in a zero-dispersion single-mode fiber (SMF) is investigated. Suppressing the stimulated Brillouin scattering (SBS) of a pump wave in the fiber prevents saturation of the generation efficiency of the phase-conjugate wave even when the pump power exceeds the SBS threshold. In transmission experiments through a 200-km standard SMF with a 16-Gb/s intensity-modulated signal and a 5-Gb/s continuous-phase FSK (CPFSK) modulated signal, it is shown the applicability of OPC is modulation independent and that OPC effectively compensates for both chromatic dispersion and the optical Kerr effect
Keywords :
frequency shift keying; optical Kerr effect; optical fibre communication; optical fibre dispersion; optical modulation; optical noise; optical phase conjugation; optical pumping; stimulated Brillouin scattering; 200 km; 5 Gbit/s; SBS suppression; SBS threshold; compensation; continuous-phase FSK; fiber dispersion; forward-going phase-conjugate wave; generation efficiency; intensity-modulated signal; nondegenerate forward four-wave mixing; optical Kerr effect; optical communication systems; optical phase-conjugate waves; phase-conjugate wave; pulse shape distortion; pulse shape distortion compensation; pump power; pump wave; single-mode fiber; stimulated Brillouin scattering suppression; third-order nonlinear medium; transmission experiments; zero-dispersion single-mode fiber; Brillouin scattering; Fiber nonlinear optics; Nonlinear optics; Optical distortion; Optical fiber communication; Optical mixing; Optical pulse shaping; Optical pumping; Optical saturation; Optical scattering;
Journal_Title :
Lightwave Technology, Journal of