Research on technical characteristics and standards of anti-radiation optical transceivers for aerospace applications

JI Xuan, LIU Wenbao, LI Hao, QIU Chen, ZHOU Yu, ZHAO Xuefeng, SIMA Dongliang, ZHANG Jian, DAI Shuanglei, SHI Suixing, LIU Ruixue, XU Mingkang

Integrated Circuits and Embedded Systems ›› 2025, Vol. 25 ›› Issue (1) : 23-28.

PDF(2335 KB)
PDF(2335 KB)
Integrated Circuits and Embedded Systems ›› 2025, Vol. 25 ›› Issue (1) : 23-28. DOI: 10.20193/j.ices2097-4191.2024.0073
Special Topic of Aerospace Component Reliability

Research on technical characteristics and standards of anti-radiation optical transceivers for aerospace applications

Author information +
History +

Abstract

The space radiation-resistant optical transceiver module is capable of realizing high-speed parallel optical-electrical conversion and transmission functions within the space application environment. By employing optical means, it achieves the transmission of high-speed signals, thereby addressing the bottleneck issue of data transmission in spaceborne systems and reducing the overall system weight through an optimized transmission architecture. This advancement holds significant milestone value. This paper provides a detailed analysis of the module's working principles, structural composition, and associated characteristics. Furthermore, it evaluates the functional performance, quality reliability, and environmental adaptability of a particular 12-channel parallel optical transceiver module that is resistant to radiation, considering its specific application context. Based on the product definition and user requirements, a standardized index system and assessment criteria have been developed in a forward-thinking approach, offering guidance for the standardization of novel optical module products.

Key words

optical transceiver modules / anti-radiation / photoelectric conversion / electro-optical conversion

Cite this article

Download Citations
JI Xuan , LIU Wenbao , LI Hao , et al . Research on technical characteristics and standards of anti-radiation optical transceivers for aerospace applications[J]. Integrated Circuits and Embedded Systems. 2025, 25(1): 23-28 https://doi.org/10.20193/j.ices2097-4191.2024.0073

References

[1]
王亚男, 张洪伟, 王文炎, 等. 一种蝶形封装多路光收发模块可靠性评价与应用研究[J]. 电子与封装, 2024, 24(8):29-35.DOI:10.16257/j.cnki.1681-1070.2024.0092.
WANG Y N, ZHANG H W, WANG W Y, et al. Reliability Evaluation and Application Research of a Butterfly-Packaged Multi-channel Optical Transceiver Module[J]. Electronics & Packaging, 2024, 24(8):29-35.DOI:10.16257/j.cnki.1681-1070.2024.0092 (in Chinese).
[2]
胡亮, 王波. 基于 CWDM 的 10 Gb/s SFP+光模块设计[J]. 通信技术, 2020, 53(8):2064-2069.
HU L, WANG B. Design of 10 Gb/s SFP+ Optical Module Based on CWDM[J]. Communication Technology, 2020, 53(8):2064-2069 (in Chinese).
[3]
杨松, 李佼洋, 蔡志岗. 100G SR4 并行光模块光电子集成封装的研究[J]. 现代电子技术, 2019, 42(3):152-156.
YANG S, LI J Y, CAI Z G. Research on Optoelectronic Integrated Packaging of 100G SR4 Parallel Optical Modules[J]. Modern Electronics Technology, 2019, 42(3):152-156 (in Chinese).
[4]
杨鹏毅, 汪梦瑶, 姚宗影, 等. 一种并行多路数字光模块的设计与实现[J]. 激光与红外, 2023, 53(8):1240-1244.
YANG P Y, WANG M Y, YAO Z Y, et al. Design and Implementation of a Parallel Multi-channel Digital Optical Module[J]. Laser & Infrared, 2023, 53(8):1240-1244 (in Chinese).
[5]
ARIMOTO YOSHINORI, TOYOSHIME MORIO, TOYODA MASAHIRO. Preliminary Result on Laser Communication Experiment Using engineering test satellite-VI (ETS-VI)[R]. Free-Space Laser Communication Technologies VII.Bellingham:SPIE, 1995.
[6]
马晶, 李密, 谭立英, 等. 卫星光通信中空间辐射对EDFA性能的影响分析[J]. 宇航学报, 2009, 30(1):250-254.
MA J, LI M, TAN L Y, et al. Analysis of the Impact of Space Radiation on EDFA Performance in Satellite Optical Communication[J]. Journal of Astronautics, 2009, 30(1):250-254 (in Chinese).
[7]
姜会林, 佟首峰. 空间激光通信技术与系统[M]. 北京: 国防工业出版社, 2010.
JIANG H L, TONG S F. Space Laser Communication Technology and Systems[M]. Beijing: National Defense Industry Press, 2010 (in Chinese).
[8]
王佳, 俞信. 自由空间光通信技术的研究现状和发展方向综述[J]. 光学技术, 2005, 31(2):259-262.
WANG J, YU X. A Review of the Current Status and Development Direction of Free-Space Optical Communication Technology[J]. Optical Techniques, 2005, 31(2):259-262 (in Chinese).
[9]
何晓垒, 张凤军, 唐骁. 小型化抗辐照DWDM光收发模块研究[J]. 光通信技术, 2017, 41(7):29-32.DOI:10.13921/j.cnki.issn1002-5561.2017.07.008.
HE X L, ZHANG F J, TANG X. Research on Miniaturized Radiation-Resistant DWDM Optical Transceiver Modules[J]. Optical Communication Technology, 2017, 41(7):29-32.DOI:10.13921/j.cnki.issn1002-5561.2017.07.008 (in Chinese).
PDF(2335 KB)

Accesses

Citation

Detail

Sections
Recommended

/