DocumentCode
25187
Title
Transmission Performance Investigation of RF Signal in RoF-DAS Over WDM-PON With Bandpass-Sampling and Optical TDM
Author
Miyamoto, Katsuhiko ; Tashiro, Takayoshi ; Fukada, Youichi ; Kani, Jun-ichi ; Terada, Jun ; Yoshimoto, Naoto ; Iwakuni, Tatsuhiko ; Higashino, Takeshi ; Tsukamoto, Kazuya ; Komaki, Shozo ; Iwatsuki, Katsumi
Author_Institution
NTT Access Network Service Syst. Labs., Nippon Telegraph & Telephone Corp., Yokosuka, Japan
Volume
31
Issue
22
fYear
2013
fDate
Nov.15, 2013
Firstpage
3477
Lastpage
3488
Abstract
The radio over fiber (RoF)-distributed antenna system (DAS) over a wavelength division multiplexing-passive optical network (WDM-PON) with multiple input multiple output (MIMO) employing bandpass-sampling and optical time division multiplexing (TDM) techniques has been proposed to realize next generation broadband wireless access with higher throughput and its preliminary feasibility has been confirmed. To investigate the performance of bandpass-sampled and time domain multiplexed optical signals, and enhance the transmission performance in the wireless link of the RoF-DAS over WDM-PON, we perform two-tone signal transmission experiments with 2.4 GHz band radio frequency (RF) signals and analyze the RF carrier power, third-order intermodulation distortion (IMD) power and noise power. The analysis results confirmed that the nonlinearity of the proposed system is mainly caused by a lithium niobate-Mach-Zehnder modulator (LN-MZM) as with the other RoF systems and that the dominant noise components are the signal-spontaneous beat noise arising from the amplified spontaneous emission (ASE) of two erbium doped fiber amplifiers (EDFAs) and the signal-signal beat noise caused by the interference between the optical TDM pulses. The latter is the specific noise component in the proposed system. In addition, we clarify the principle of the signal-signal beat noise generation and report that the signal-spontaneous beat noise can be reduced by the gain optimization of the two EDFAs.
Keywords
MIMO communication; erbium; intermodulation distortion; lithium compounds; next generation networks; passive optical networks; radio access networks; radio-over-fibre; signal sampling; superradiance; time division multiplexing; wavelength division multiplexing; ASE; EDFA; IMD power; LN-MZM; LiNbO3; RF carrier power; RF signal; RoF-DAS; WDM-PON; amplified spontaneous emission; bandpass-sampling; distributed antenna system; erbium doped fiber amplifier; lithium niobate-Mach-Zehnder modulator; multiple input multiple output system; next generation broadband wireless access; noise power; optical TDM; optical time division multiplexing; radio frequency signal; radio over fiber; third-order intermodulation distortion; time domain multiplexed optical signals; transmission performance investigation; two-tone signal transmission experiment; wavelength division multiplexing-passive optical network; Optical pulses; Passive optical networks; RF signals; Time division multiplexing; Wavelength division multiplexing; Wireless communication; Bandpass-sampling; optical time division multiplexing; radio over fiber; wavelength division multiplexing-passive optical network;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2013.2283522
Filename
6609067
Link To Document