DocumentCode
40319
Title
Investigation of Optical Modulators in Optimized Nonlinear Compensated LTE RoF System
Author
Kanesan, T. ; Wai Pang Ng ; Ghassemlooy, Zabih ; Chao Lu
Author_Institution
Telekom R&D (TM R&D), TM Innovation Centre, Cyberjaya, Malaysia
Volume
32
Issue
10
fYear
2014
fDate
15-May-14
Firstpage
1944
Lastpage
1950
Abstract
In this paper, we investigate a nonlinear compensation technique with two different architectures using direct modulation (DM) and external modulation (EM) techniques, termed as DM based frequency dithering (DMFD) and EM based frequency dithering (EMFD). We show that DMFD and EMFD methods operate substantially different in radio-over-fiber (RoF) system by optimizing the dithering technique relative to the LTE technology. The proposed techniques is only applicable if the condition of {fL <; fd <; fRF} is met, where fL represents the dithering boundary limit of 14 MHz, fd is DMFD signal frequency and fRF is the RoF carrier frequency. Analysis of the optical launch power for DMFD and EMFD methods reveal that the stimulated Brillouin scattering threshold is above ~6 dBm for the LTE-RoF system. In addition, we also unveil that DMFD and EMFD methods do not introduce additional distortion for the linear and optimum optical launch power regions, which are frequency chirp driven regions. If the given condition is met, the proposed method improves the LTE-RoF system without any shortcoming. Finally, at 10 dBm launch power, DMFD and EMFD methods exhibits an average signal-to-noise ratio gain of ~5.95 and ~7.71 dB, respectively.
Keywords
Long Term Evolution; OFDM modulation; optical modulation; radio-over-fibre; stimulated Brillouin scattering; direct modulation based frequency dithering; external modulation based frequency dithering; optical launch power; optical modulators; optimized nonlinear compensated LTE RoF system; radio-over-fiber system; signal frequency; signal-to-noise ratio gain; stimulated Brillouin scattering; Frequency modulation; Nonlinear optics; Optical distortion; Optical fibers; Optical scattering; Long term evolution (LTE); nonlinear compensation; optical OFDM (OOFDM); radio-over-fiber (RoF);
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2014.2312321
Filename
6774893
Link To Document