Title :
Phase-diversity homodyne detection of multilevel optical modulation with digital carrier phase estimation
Author_Institution :
Dept. of Adv. Sci. & Technol., Tokyo Univ.
Abstract :
This paper describes a phase-diversity homodyne receiver that which can cope with multilevel modulation formats. The carrier phase drift is estimated with digital signal processing (DSP) on the homodyne-detected signal, entirely restoring the complex amplitude of the incoming signal. Our DSP-based phase-estimation scheme consists of a simple and demultiplexable architecture that allows the system to reach significantly higher performance than conventional optical delay detection. Since the whole optical signal information is preserved with our receiver, various kinds of postprocessing of the received signal become possible. For example, we can demultiplex wavelength-division/optical time-division multiplexed channels and compensate for group velocity dispersion of fibers as well as the nonlinear phase noise in the electrical domain. We also experimentally evaluate the performance of our receiver. Our offline bit-error rate experiments show the feasibility of transmitting polarization-multiplexed 40-Gb/s quadrature phase-shift keying signals over 200 km with channel spacing of 16 GHz, leading to spectral efficiency of 2.5 b/s/Hz
Keywords :
channel spacing; demultiplexing; error statistics; homodyne detection; optical fibre communication; optical fibre dispersion; optical fibre polarisation; optical information processing; optical modulation; optical receivers; phase estimation; phase noise; quadrature phase shift keying; time division multiplexing; wavelength division multiplexing; 16 GHz; 200 km; 40 Gbit/s; carrier phase drift; channel spacing; demultiplexable architecture; digital carrier phase estimation; digital signal processing; electrical domain; group velocity dispersion; homodyne receiver; homodyne-detected signal; multilevel modulation formats; multilevel optical modulation; nonlinear phase noise; offline bit-error rate experiments; optical fiber dispersion; optical signal information; optical time-division multiplexed channels; phase-diversity homodyne detection; phase-estimation; polarization-multiplexed signals; quadrature phase-shift keying signals; wavelength-division multiplexed channels; Digital signal processing; Fiber nonlinear optics; Optical detectors; Optical modulation; Optical noise; Optical receivers; Optical signal processing; Phase detection; Phase estimation; Signal processing; Optical fiber communication; phase modulation;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2006.876307