Er:YAG/Yb:YAG nanopowders‐derived Er/Yb co‐doped yttrium aluminosilicate (YAS) fibers fabricated by UV‐curable nanocomposites for 1.5‐µm single‐frequency fiber lasers

材料科学 硅酸铝 兴奋剂 透明陶瓷 光纤激光器 纤维 陶瓷 纳米复合材料 复合材料 Crystal(编程语言) 分析化学(期刊) 光电子学 冶金 氧化物 催化作用 化学 程序设计语言 生物化学 色谱法 计算机科学
作者
Baoluo Zheng,Fuxin Qi,Jing Yang,Biao li,Jinming Liu,Xin Zhang,Yubin Hou,Qian Zhang,Pu Wang
出处
期刊:Journal of the American Ceramic Society [Wiley]
卷期号:105 (12): 7064-7071 被引量:4
标识
DOI:10.1111/jace.18687
摘要

Abstract The rare‐earth (RE)‐doped yttrium aluminosilicate (YAS) glass fibers have demonstrated their unique advantages in single‐frequency lasers due to their high solubility of RE ions and high gain per unit length. However, the RE‐doped YAS fiber is usually fabricated by RE:YAG crystal or ceramic rods and melting‐in‐tube method, which depend heavily on RE:YAG crystal or ceramic rods and, thus, cannot adjust the fiber compositions effectively; there is little research on the multiple RE ions co‐doped YAS fiber deriving from RE:YAG crystal or ceramic rods. In present work, we developed a novel method to fabricate Er/Yb co‐doped YAS fibers efficiently. The Er:YAG and Yb:YAG nanopowders were fabricated by the coprecipitation method, and then the nanopowders were dispersed into liquid organic resin to form a novel UV‐curable nanocomposite, after curing, debinding, purifying, and drawing process, an Er/Yb co‐doped YAS fibers was fabricated, the absorption coefficients of the fiber was measured to be 17 dB/cm at 976 nm ( 2 F 7/2 ground level to 2 F 5/2 level of Yb and 4 I 15/2 ground level to 4 I 11/2 level of Er) and 3.2 dB/cm at 1530 nm ( 4 I 15/2 ground level to the high states of 4 I 13/2 of Er). A 1.5‐µm single‐frequency laser was constructed with the 2‐cm Er/Yb co‐doped YAS fiber. The longitudinal mode spacing was calculated to be 2.2 GHz with an effective cavity length of 4.5 cm, and the spectral signal‐to‐noise ratio was higher than 60 dB. To the best of our knowledge, it is the first time that Er/Yb co‐doped YAS fibers are fabricated using the UV‐curable nanocomposites. It indicates that this proposed technology is critical for the fabrication of various types of RE ions co‐doped YAS fibers and their applications in single‐frequency fiber lasers.
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