DocumentCode :
86566
Title :
Phase Regeneration of a BPSK Data Signal Using a Lithium Niobate Phase Modulator
Author :
Mulvad, Hans Christian Hansen ; Da Ros, Francesco ; Galili, Michael ; Dalgaard, Kjeld ; Oxenlowe, Leif K.
Author_Institution :
Dept. of Photonics Eng., Tech. Univ. of Denmark, Lyngby, Denmark
Volume :
33
Issue :
11
fYear :
2015
fDate :
June1, 1 2015
Firstpage :
2189
Lastpage :
2198
Abstract :
We propose a scheme for phase regeneration of an optical binary phase shift keying (BPSK) data signal using a Lithium Niobate (LiNbO3) phase modulator. The scheme is based on heterodyne detection of the BPSK data signal with a continuous wave local oscillator (CW-LO). Carrier recovery is then achieved in the electrical domain using a ×2 frequency-multiplier and a narrow-band filtering scheme. Subsequently, a superposition of the recovered carrier and the heterodyne detected data signal is used to modulate the CW-LO in a LiNbO3 phase modulator. The result is a parametric mixing process in the optical domain, leading to a phase-regenerated BPSK data signal by the coherent superposition with a phase-inverted copy. The proposed scheme constitutes a compact and stable setup, where active phase-stabilization of the electrical data- and carrier-paths can potentially be avoided. An analytical derivation of the working principle is provided, using Jacobi-Anger expansions to describe the phase-modulation. A proof-of-principle experiment is carried out, demonstrating regeneration of a 10 Gb/s NRZ-BPSK data signal degraded by a 5-GHz sinusoidal phase-noise tone. In the proof-of-principle demonstration, the decorrelated data- and LO-carriers are derived from the same CW source. A preliminary test with separate CW sources for data and LO, but without the required electrical narrow-band carrier filtering, is also included. Finally, numerical simulations of the regenerator performance in the presence of wideband phase- and amplitude-noise are performed.
Keywords :
frequency multipliers; heterodyne detection; light coherence; lithium compounds; optical communication equipment; optical filters; optical modulation; optical noise; phase noise; phase shift keying; CW sources; Jacobi-Anger expansions; LO-carriers; LiNbO3; NRZ-BPSK data signal; active phase-stabilization; amplitude-noise; bit rate 10 Gbit/s; carrier recovery; carrier-paths; coherent superposition; continuous wave local oscillator; decorrelated data-carriers; electrical data-paths; electrical domain; frequency 5 GHz; frequency-multiplier; heterodyne detection; lithium niobate phase modulator; narrow-band filtering scheme; numerical simulations; optical binary phase shift keying data signal; optical domain; parametric mixing process; phase regeneration; sinusoidal phase-noise tone; Binary phase shift keying; Optical amplifiers; Optical filters; Optical mixing; Optical sensors; Repeaters; Differential phase-shift keying; Optical communication; differential phase-shift keying; microwave communication; optical communication; phase regeneration;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2015.2408568
Filename :
7054432
Link To Document :
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