Perspectives on and the road towards 100 Gb/s TDM PON with intensity-modulation and direct-detection

被引:19
作者
Bonk, Rene [1 ]
Harstead, Ed [2 ]
Borkowski, Robert [3 ]
Houtsma, Vincent [3 ]
Lefevre, Yannick [4 ]
Mahadevan, Amitkumar [3 ]
van Veen, Dora [3 ]
Verplaetse, Michiel [4 ]
Walklin, Sheldon [5 ]
机构
[1] Nokia Bell Labs, Magirusstr 8, D-70469 Stuttgart, Germany
[2] Nokia, Fixed Networks Div, 600 Mt Ave, Murray Hill, NJ 07974 USA
[3] Nokia Bell Labs, 600 Mt Ave, Murray Hill, NJ 07974 USA
[4] Nokia Bell Labs, Copernicuslaan 50, B-2018 Antwerp, Belgium
[5] Nokia, Fixed Networks Div, 600 March Rd, Kanata, ON K2K 2T6, Canada
关键词
Optical transmitters; Passive optical networks; Time division multiplexing; Optical network units; Optical receivers; Optical sensors; Optical losses;
D O I
10.1364/JOCN.489228
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
We assess the status of current generation 25G and 50G time division multiplexed passive optical network (TDM PON) technologies based on leveraging the cost efficiencies of the Ethernet intra-datacenter ecosystem. As a first step towards 100G TDM PON, we predict the real-world impact of a flexible modulation enhancement to 50G PON, whereby four-level pulse amplitude modulation (PAM4) symbols can be transmitted at the same symbol rate as 50 Gb/s PAM2, but only where excess margins permit. We find that sufficient margins are likely to exist to allow for a majority of future 50G PON optical network units to operate at 100 Gb/s PAM4. Next, we look at the options for a 100G PON capable of supporting the full loss budget and reach requirements. There is no technical risk if coherent technology is adopted, but intensity-modulation and direct-detection (IM-DD) will provide lower complexity, lower cost, and lower power dissipation. We evaluate this option and conclude that by following IM-DD Ethernet optics to 100 GBd, single wavelength IM-DD will continue to be feasible for 100G PON and will be a strong contender for the next generation of PON after 50 Gb/s.
引用
收藏
页码:518 / 526
页数:9
相关论文
共 21 条
[1]  
[Anonymous], 2021, ITU-T Recommendation G.9804.3
[2]   50G-PON: The First ITU-T Higher-Speed PON System [J].
Bonk, Rene ;
Geng, Dan ;
Khotimsky, Denis ;
Liu, Dekun ;
Liu, Xiang ;
Luo, Yuanqiu ;
Nesset, Derek ;
Oksman, Vladimir ;
Strobel, Rainer ;
Van Hoof, Werner ;
Wey, Jun Shan .
IEEE COMMUNICATIONS MAGAZINE, 2022, 60 (03) :48-54
[3]  
Borkowski R., J OPT COMMUN NETW, V14
[4]   FLCS-PON - A 100 Gbit/s Flexible Passive Optical Network: Concepts and Field Trial [J].
Borkowski, Robert ;
Straub, Michael ;
Ou, Yanni ;
Lefevre, Yannick ;
Jelic, Zeljko L. ;
Lanneer, Wouter ;
Kaneda, Noriaki ;
Mahadevan, Amitkumar ;
Hueckstaedt, Volker ;
van Veen, Dora ;
Houtsma, Vincent ;
Coomans, Werner ;
Bonk, Rene ;
Maes, Jochen .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2021, 39 (16) :5314-5324
[5]  
Cole C, 2023, CONTRIBUTION COLE 3D
[6]   Coherent Passive Optical Networks: Why, When, and How [J].
Faruk, Md Saifuddin ;
Li, Xiang ;
Nesset, Derek ;
Cano, Ivan N. ;
Rafel, Albert ;
Savory, Seb J. .
IEEE COMMUNICATIONS MAGAZINE, 2021, 59 (12) :112-117
[7]  
Fludger C. R. S., 2014, OPTICAL FIBER COMMUN
[8]   Technology Roadmap for Time-Division Multiplexed Passive Optical Networks (TDM PONs) [J].
Harstead, Ed ;
van Veen, Doutje ;
Houtsma, Vincent ;
Dom, Pascal .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2019, 37 (02) :657-664
[9]  
Houtsma V, 2022, 2022 EUROPEAN CONFERENCE ON OPTICAL COMMUNICATION (ECOC)
[10]   Investigation of Modulation Schemes for Flexible Line-Rate High-Speed TDM-PON [J].
Houtsma, Vincent E. ;
van Veen, Doutje T. .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2020, 38 (12) :3261-3267