Acta Photonica Sinica, Volume. 52, Issue 2, 0206003(2023)
Effect of La Doping on the Radiation Damage Effect of Er3+-Doped Silica Fibers for Space Laser Communication
[1] SHAO Chongyun, YU Chunlei, HU Lili. Radiation-resistant active optical fibers for space applications[J]. Chinese Journal of Lasers, 47, 0500014(2020).
[2] LI Mi. Study on the effect of space radiation environment on erbium-doped fiber amplifier in satellite optical communication[D](2011).
[3] SHE Shengfei, MEI Lin, ZHOU Zhenyu et al. Progress in radiation-resistant erbium-doped and erbium-ytterbium co-doped fibers for space optical communication[J]. Journal of Applied Sciences, 38, 579-594(2020).
[4] CHEN Yang, ZHU Yingbo, DAI Nengli et al. Fabrication of erbium-ytterbium co-doped fiber and fiber laser performance study[J]. Chinese Journal of Lasers, 48, 41-47(2021).
[5] WANG Bo, CAO Chi, XING Yingbin et al. Research status on radiation performance and radiation resistance technology of rare-earth-doped fibers[J]. Laser & Optoelectronics Progress, 58, 150-169(2021).
[6] MA Chengqi, ZHANG Yating, JIN Lufan et al. Investigation on low frequency noise characteristics of fiber amplifier influenced by gamma-ray irradiated gain fiber[J]. Acta Photonica Sinica, 50, 0106002(2021).
[7] LEÓN M, LANCRY M, OLLIER N et al. A Ge- and Al-related point defects generated by Gamma irradiation in nanostructured Erbium-doped optical fiber preforms[J]. Journal of Materials Science, 51, 10245-10261(2016).
[8] JIAO Y, YANG Q, ZHU Y et al. Improved radiation resistance of an Er-doped silica fiber by a preform pretreatment method[J]. Optics Express, 30, 6236-6247(2022).
[9] CHANG Deyuan. Development of high concentration erbium-doped optical fiber[D](2008).
[10] LAGOMACINI J C, BRAVO D, MARTÍN A et al. Growth kinetics of AlOHC defects in γ-irradiated silica glasses[J]. Journal of Non-Crystalline Solids, 403, 5-8(2014).
[11] JIANG Zuowen, LI Jinyan, LIU Xuejun et al. Studies on characteristics of er-la co-doped fiber[J]. Journal of Optoelectronics Laser, 15, 1038-1041(2004).
[12] GU Zhimu, ZHU Yingbo, HU Xiongwei et al. High-absorption, high-efficiency, low-cluster erbium-doped fiber and its amplification performance[J]. Chinese Journal of Lasers, 49, 185-186(2022).
[13] OTT M N, JIN X L, CHUSKA R et al. Space flight requirements for fiber optic components: qualification testing and lessons learned[C](2006).
[14] JIAO Y, YANG Q, GUO M et al. Effect of the GeO2 content on the radiation resistance of Er3+-doped silica glasses and fibers[J]. Optical Materials Express, 11, 1885-1897(2021).
[15] CHEN Shanqiang, LIU Siqing, SHI Liqin et al. Software for space radiation effects assessment[J]. Journal of Astronautics, 38, 317-322(2017).
[16] HAMZAOUI H E, BOUAZAOUI M, CAPOEN B. Raman investigation of germanium- and phosphorus-doping effects on the structure of Sol–Gel silica-based optical fiber preforms[J]. Journal of Molecular Structure 2015, 77-82(1099).
Get Citation
Copy Citation Text
Xuan WEN, Shengsheng YANG, Xin GAO, Shengfei SHE, Gencheng WANG, Zhanzu FENG, Jun WANG, Hong YIN, Chaoqi HOU, Jianfeng ZHANG. Effect of La Doping on the Radiation Damage Effect of Er3+-Doped Silica Fibers for Space Laser Communication[J]. Acta Photonica Sinica, 2023, 52(2): 0206003
Category: Fiber Optics and Optical Communications
Received: Sep. 27, 2022
Accepted: Nov. 10, 2022
Published Online: Mar. 28, 2023
The Author Email: Shengsheng YANG (2syang@sina.com)