DocumentCode :
1754582
Title :
Design and Technical Feasibility of Next 400 GbE 40-km PMD Based on 16 ,\\times, 25 Gbps Architecture
Author :
Gutierrez-Castrejon, R. ; Torres-Ferrera, Pablo
Author_Institution :
Inst. of Eng., Univ. Nac. Autonoma de Mexico UNAM, Mexico City, Mexico
Volume :
31
Issue :
14
fYear :
2013
fDate :
41470
Firstpage :
2386
Lastpage :
2393
Abstract :
The technical feasibility of a straightforward and cost-effective extension of the current 100 Gb/s Ethernet 40-km physical medium dependent (PMD) architecture for single-mode fiber to a higher speed of 400 Gb/s is demonstrated by means of simulations. A 16-wavelength configuration, each running at 25 Gb/s in non-return-to-zero modulation format and using plain direct detection is numerically analyzed and optimized. It is shown that error-free performance is achievable when a channel plan slightly shifted from the zero-dispersion wavelength of the transmission fiber and having a channel spacing of 400 GHz is utilized. However, to meet the power budget requirement in a fiber having an attenuation coefficient of 0.50 dB/km, a semiconductor optical pre-amplifier with a small-signal gain of 23 dB and transmitters having a minimum average output power of +2.9 dBm and an extinction ratio of 8 dB have to be employed. Based on the calculated design margins, the use of flexible active devices is suggested for span lengths shorter than 40 km.
Keywords :
channel spacing; extinction coefficients; numerical analysis; optical design techniques; optical fibre LAN; optical fibre dispersion; optical fibre theory; optical modulation; optical transmitters; preamplifiers; semiconductor optical amplifiers; 16-wavelength configuration; 400 GbE 40-km PMD architecture; Ethernet; attenuation coefficient; average output power; bit rate 100 Gbit/s; bit rate 25 Gbit/s; bit rate 400 Gbit/s; channel plan; channel spacing; distance 400 km; error-free performance; extinction ratio; flexible active devices; frequency 400 GHz; nonreturn-to-zero modulation format; numerical analysis; optimization; physical medium dependent architecture; plain direct detection; power budget; semiconductor optical preamplifier; single-mode fiber; small-signal gain; span lengths; technical feasibility; transmission fiber; transmitters; zero-dispersion wavelength; Adaptive optics; Bandwidth; Modulation; Nonlinear optics; Optical receivers; Optical transmitters; Semiconductor optical amplifiers; 802.3; Ethernet layers; nonlinear effects; physical media dependent; semiconductor optical amplifier; transmission system simulation; wavelength division multiplexing;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2013.2266271
Filename :
6523939
Link To Document :
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