Title :
Polarization Independent All-Optical 3R Regeneration Based on the Kerr Effect in Highly Nonlinear Fiber and Offset Spectral Slicing
Author :
Ito, Chris ; Cartledge, John C.
Author_Institution :
Ciena Corp., Linthicum, MD
Abstract :
A detailed experimental characterization of a polarization-independent all-optical 3R regenerator is presented. The regenerator is comprised of a self-pulsating distributed feedback laser for clock recovery, cross-phase modulation in a highly nonlinear fiber (HNLF) and offset spectral slicing for retiming, and self-phase modulation in an HNLF and offset spectral slicing for reshaping. A key feature of the regenerator is that polarization-independent operation is achieved without additional complexity as compared to a conventional polarization-dependent implementation. The regenerator performance is assessed for important properties of the input signal, including the optical signal-to-noise ratio, waveform distortion due to residual group velocity dispersion and polarization mode dispersion, state-of-polarization, power, and wavelength. With careful attention to key design parameters, excellent performance is achieved.
Keywords :
distributed feedback lasers; optical Kerr effect; optical fibre communication; optical fibre dispersion; optical fibre polarisation; optical repeaters; phase modulation; clock recovery; cross-phase modulation; highly nonlinear fiber; offset spectral slicing; optical signal-to-noise ratio; polarization mode dispersion; polarization-independent all-optical 3R regenerator; residual group velocity dispersion; self-phase modulation; self-pulsating distributed feedback laser; state-of-polarization; waveform distortion; Clocks; Distributed feedback devices; Fiber lasers; Fiber nonlinear optics; Kerr effect; Laser feedback; Optical distortion; Optical fiber polarization; Polarization mode dispersion; Repeaters; All-optical regeneration; cross-phase modulation (XPM); highly nonlinear optical fiber; optical signal processing; self-phase modulation (SPM);
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2007.915393