DocumentCode :
40281
Title :
High-Capacity Directly Modulated Optical Transmitter for 2-μm Spectral Region
Author :
Zhixin Liu ; Yong Chen ; Zhihong Li ; Kelly, Brian ; Phelan, Richard ; O´Carroll, John ; Bradley, Tom ; Wooler, John P. ; Wheeler, Natalie V. ; Heidt, Alexander M. ; Richter, Thomas ; Schubert, Colja ; Becker, Martin ; Poletti, Francesco ; Petrovich, Marc
Author_Institution :
Optoelectron. Res. Centre, Univ. of Southampton, Southampton, UK
Volume :
33
Issue :
7
fYear :
2015
fDate :
April1, 1 2015
Firstpage :
1373
Lastpage :
1379
Abstract :
The 2-μm wave band is emerging as a potential new window for optical telecommunications with several distinct advantages over the traditional 1.55 μm region. First of all, the hollow-core photonic band gap fiber (HC-PBGF) is an emerging transmission fiber candidate with ultra-low nonlinearity and lowest latency (0.3% slower than light propagating in vacuum) that has its minimum loss within the 2-μm wavelength band. Second, the thulium-doped fiber amplifier that operates in this spectral region provides significantly more bandwidth than the erbium-doped fiber amplifier. In this paper, we demonstrate a single-channel 2-μm transmitter capable of delivering >52 Gbit/s data signals, which is twice the capacity previously demonstrated. To achieve this, we employ discrete multitone modulation via direct current modulation of a Fabry-Perot semiconductor laser. The 4.4-GHz modulation bandwidth of the laser is enhanced by optical injection locking, providing up to 11 GHz modulation bandwidth. Transmission over 500-m and 3.8-km samples of HC-PBGF is demonstrated.
Keywords :
laser mode locking; optical fibre amplifiers; optical fibre communication; optical modulation; optical transmitters; photonic band gap; semiconductor lasers; thulium; Fabry-Perot semiconductor laser; HC-PBGF; bandwidth 4.4 GHz; discrete multitone modulation; high-capacity directly current modulation optical transmitter; hollow-core photonic band gap fiber; laser modulation bandwidth; optical injection locking; optical telecommunication; spectral region; thulium-doped fiber amplifier; transmission fiber; Bandwidth; Modulation; Optical fiber amplifiers; Optical fiber communication; Optical transmitters; Digital signal processing; Optical fiber communication; Optical modulation; optical fiber communication; optical modulation; optical transmitter; photonic band gap fiber;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2015.2397700
Filename :
7024914
Link To Document :
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