Title :
All-optical wavelength conversion of short pulses and NRZ signals based on a nonlinear optical loop mirror
Author :
Yu, Jianjun ; Zheng, Xueyan ; Peucheret, Christophe ; Clausen, Anders T. ; Poulsen, Henrik N. ; Jeppesen, Palle
Author_Institution :
Res. Centre COM, Tech. Univ., Lyngby, Denmark
fDate :
7/1/2000 12:00:00 AM
Abstract :
Wavelength conversion of short pulses at 10 GHz based on a nonlinear optical loop mirror (NOLM) is experimentally and numerically investigated for the case of small group velocity dispersion and walkoff between the control pulses and continuous lightwaves. Experimental and numerical simulation results show that the pulsewidths of the converted signals at different wavelengths are almost the same, and the pulsewidths are compressed when the peak power of the control pulse is smaller than a certain value. An RZ optical source containing eight wavelengths having a high sidemode suppression ratio, equal amplitudes and almost the same pulsewidths is obtained by using wavelength conversion in a NOLM consisting of a common dispersion shifted fiber. 10 Gb/s NRZ wavelength conversion based on the NOLM is demonstrated for the first time and certain conclusions in some of the references are confirmed by our experimental results.
Keywords :
high-speed optical techniques; mirrors; nonlinear optics; optical fibre dispersion; optical wavelength conversion; wavelength division multiplexing; 10 GHz; 10 Gbit/s; Gb/s NRZ wavelength conversion; NOLM; NRZ signals; RZ optical source; all-optical short pulse wavelength conversion; common dispersion shifted fiber; continuous lightwaves; control pulse; control pulses; converted signals; equal amplitudes; high sidemode suppression ratio; nonlinear optical loop mirror; numerical simulation; peak power; pulsewidths; small group velocity dispersion; wavelength conversion; Fiber nonlinear optics; Lighting control; Mirrors; Nonlinear optics; Optical control; Optical pulses; Optical signal processing; Optical wavelength conversion; Pulse compression methods; Velocity control;
Journal_Title :
Lightwave Technology, Journal of