作者单位
摘要
1 长春理工大学 高功率半导体激光国家重点实验室,吉林 长春 130022
2 中国科学院长春光学精密机械与物理研究所 发光学及应用国家重点实验室,吉林 长春 130033
3 吉光半导体科技有限公司,吉林 长春 130033
850 nm的垂直腔面发射激光器(VCSEL)是短距离光互连的核心光源。随着对数据中心流量的需求增加,实现不归零(NRZ)调制高速无误码传输是目前的研究热点。本文设计制备了基于λ/2短腔和六层氧化限制层的高速850 nm VCSEL,室温下最高-3 dB带宽达到23.8 GHz。NRZ调制50 Gbit/s(1 m)和40 Gbit/s(100 m)速率下获得清晰的眼图。在未使用预加重、均衡和前向纠错的条件下,通过NRZ调制在1 m和100 m下无误码传输速率分别为40 Gbit/s和30 Gbit/s。
850 nm VCSEL NRZ调制 高速 器件制备 850 nm VCSEL NRZ modulation high speed device fabrication 
红外与毫米波学报
2023, 42(4): 457
Author Affiliations
Abstract
1 Department of Electrical and Computer Engineering, University of Pittsburgh, Pittsburgh, PA 15261, United States of America
2 School of Optoelectronic Engineering and Instrument Science, Dalian University of Technology, Dalian 116081, People’s Republic of China
3 Westinghouse Electric Company LLC, Pittsburgh, PA 15235, United States of America
4 Nuclear Reactor Laboratory, Massachusetts Institute of Technology, 138 Albany Street, Cambridge, MA 02139, United States of America
The femtosecond laser has emerged as a powerful tool for micro- and nanoscale device fabrication. Through nonlinear ionization processes, nanometer-sized material modifications can be inscribed in transparent materials for device fabrication. This paper describes femtosecond precision inscription of nanograting in silica fiber cores to form both distributed and point fiber sensors for sensing applications in extreme environmental conditions. Through the use of scanning electron microscope imaging and laser processing optimization, high-temperature stable, Type II femtosecond laser modifications were continuously inscribed, point by point, with only an insertion loss at 1 dB m-1 or 0.001 dB per point sensor device. High-temperature performance of fiber sensors was tested at 1000 ℃, which showed a temperature fluctuation of ±5.5 ℃ over 5 days. The low laser-induced insertion loss in optical fibers enabled the fabrication of a 1.4 m, radiation-resilient distributed fiber sensor. The in-pile testing of the distributed fiber sensor further showed that fiber sensors can execute stable and distributed temperature measurements in extreme radiation environments. Overall, this paper demonstrates that femtosecond-laser-fabricated fiber sensors are suitable measurement devices for applications in extreme environments.
femtosecond laser manufacturing optical fiber sensor device fabrication extreme environment sensing 
International Journal of Extreme Manufacturing
2021, 3(2): 025401

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