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High-coherence parallelization in integrated photonics.

Authors :
Zhang, Xuguang
Zhou, Zixuan
Guo, Yijun
Zhuang, Minxue
Jin, Warren
Shen, Bitao
Chen, Yujun
Huang, Jiahui
Tao, Zihan
Jin, Ming
Chen, Ruixuan
Ge, Zhangfeng
Fang, Zhou
Zhang, Ning
Liu, Yadong
Cai, Pengfei
Hu, Weiwei
Shu, Haowen
Pan, Dong
Bowers, John E.
Source :
Nature Communications; 9/10/2024, Vol. 15 Issue 1, p1-9, 9p
Publication Year :
2024

Abstract

Coherent optics has profoundly impacted diverse applications ranging from communications, LiDAR to quantum computations. However, developing coherent systems in integrated photonics comes at great expense in hardware integration and energy efficiency. Here we demonstrate a high-coherence parallelization strategy for advanced integrated coherent systems at minimal cost. By using a self-injection locked microcomb to injection lock distributed feedback lasers, we achieve a record high on-chip gain of 60 dB with no degradation in coherence. This strategy enables highly coherent channels with linewidths down to 10 Hz and power over 20 dBm. The overall electrical-to-optical efficiency reaches 19%, comparable to that of advanced semiconductor lasers. This method supports a silicon photonic communication link with an unprecedented data rate beyond 60 Tbit/s and reduces phase-related DSP consumption by 99.99999% compared to traditional III-V laser pump schemes. This work paves the way for realizing scalable, high-performance coherent integrated photonic systems, potentially benefiting numerous applications. Researchers demonstrate the high-coherence parallelization in integrated photonics. Their high-coherence, high-power, multiwavelength light source drives a silicon photonic link with a 60 Tbit/s data rate and significantly reduces digital signal processing consumption. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20411723
Volume :
15
Issue :
1
Database :
Complementary Index
Journal :
Nature Communications
Publication Type :
Academic Journal
Accession number :
179553540
Full Text :
https://doi.org/10.1038/s41467-024-52269-7