谐振器
传输(电信)
数据传输
光电子学
光通信
光学
光子学
材料科学
物理
计算机科学
电信
计算机硬件
作者
Asbjørn A. Jørgensen,Deming Kong,Martin R. Henriksen,Frederik Klejs,Zhichao Ye,Óskar B. Helgason,Henrik K. Hansen,Hao Hu,Metodi P. Yankov,Søren Forchhammer,Peter A. Andrekson,Anders Larsson,Magnus Karlsson,Jochen Schröder,Y. Sasaki,Kazuhiko Aikawa,J. Thomsen,Toshio Morioka,Michael Galili,Víctor Torres-Company,Leif Katsuo Oxenløwe
出处
期刊:Nature Photonics
[Springer Nature]
日期:2022-10-20
卷期号:16 (11): 798-802
被引量:38
标识
DOI:10.1038/s41566-022-01082-z
摘要
Optical fibre communication is the backbone of the internet. As essential core technologies are approaching their limits of size, speed and energy-efficiency, there is a need for new technologies that offer further scaling of data transmission capacity. Here we show that a single optical frequency-comb source based on a silicon nitride ring resonator supports data capacities in the petabit-per-second regime. We experimentally demonstrate transmission of 1.84 Pbit s–1 over a 37-core, 7.9-km-long fibre using 223 wavelength channels derived from a single microcomb ring resonator producing a stabilized dark-pulse Kerr frequency comb. We also present a theoretical analysis that indicates that a single, chip-scale light source should be able to support 100 Pbit s–1 in massively parallel space-and-wavelength multiplexed data transmission systems. Our findings could mark a shift in the design of future communication systems, targeting device-efficient transmitters and receivers.
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