DocumentCode :
1549537
Title :
Influence of fiber-Bragg grating-induced group-delay ripple in high-speed transmission systems
Author :
Tipsuwannakul, Ekawit ; Li, Jianqiang ; Eriksson, Tobias A. ; Egnell, Lars ; Sjöström, Fredrik ; Pejnefors, Johan ; Andrekson, Peter A. ; Karlsson, Magnus
Author_Institution :
Photonic Lab., Microtechnol. & Nanosci. (MC2), Chalmers Univ. of Technol., Gothenburg, Sweden
Volume :
4
Issue :
6
fYear :
2012
fDate :
6/1/2012 12:00:00 AM
Firstpage :
514
Lastpage :
521
Abstract :
The implementation of a chirped fiber-Bragg grating (FBG) for dispersion compensation in high-speed (up to 120 Gbit/s) transmission systems with differential and coherent detection is, for the first time, experimentally investigated. For systems with differential detection, we examine the influence of group-delay ripple (GDR) in 40 GBd 2-, 4-, and 8-ary differential phase shift keying (DPSK) systems. Furthermore, we conduct a nonlinear-tolerance comparison between the systems implementing dispersion-compensating fibers and FBG modules, using a 5×80 Gbit/s 100-GHz-spaced wavelength division multiplexing 4-ary DPSK signal. The results show that the FBG-based system provides a 2 dB higher optimal launch power, which leads to more than 3 dB optical signal-to-noise ratio (OSNR) improvement at the receiver. For systems with coherent detection, we evaluate the influence of GDR in a 112 Gbit/s dual-polarization quadrature phase shift keying system with respect to signal wavelength. In addition, we demonstrate that, at the optimal launch power, the 112 Gbit/s systems implementing FBG modules and that using electronic dispersion compensation provide similar performance after 840 km transmission despite the fact that the FBG-based system delivers lower OSNR at the receiver. Lastly, we quantify the GDR mitigation capability of a digital linear equalizer in the 112 Gbit/s coherent systems with respect to the equalizer tap number (Ntap). The results indicate that at least Ntap = 9 is required to confine Q-factor variation within 1 dB.
Keywords :
Bragg gratings; Q-factor; differential phase shift keying; optical fibre dispersion; DPSK systems; Q-factor; coherent detection; differential detection; differential phase shift keying; dispersion compensation; fiber-Bragg grating induced group delay ripple; high speed transmission systems; nonlinear tolerance comparison; optical signal-to-noise ratio; Differential phase shift keying; Dispersion; Insertion loss; Optical noise; Q factor; Receivers; Signal to noise ratio; Coherent detection; Differential detection; Dispersion compensation; Equalization; Fiber Bragg grating; Group delay ripple; Phase shift keying;
fLanguage :
English
Journal_Title :
Optical Communications and Networking, IEEE/OSA Journal of
Publisher :
ieee
ISSN :
1943-0620
Type :
jour
DOI :
10.1364/JOCN.4.000514
Filename :
6226978
Link To Document :
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