稀土掺杂光纤材料掺杂均匀性表征技术研究进展

Research progress on characterization techniques for doping uniformity in rare-earth-doped optical fiber materials

  • 摘要: 稀土掺杂光纤是高功率光纤激光器和光纤放大器的关键增益介质,稀土离子及共掺元素的分布均匀性直接影响泵浦吸收、增益分布、折射率剖面、模式稳定性、光暗化行为和长期可靠性。本文从元素成分与局域结构、折射率分布和光学响应三个互补层面,综述稀土掺杂石英基光纤及其预制棒掺杂均匀性表征技术的研究进展。元素成分分析可获得掺杂元素的空间分布、局部富集、扩散和化学状态等信息,局域结构表征可进一步揭示稀土离子的近邻配位、玻璃网络结构和缺陷中心。折射率分布测量可用于评价纤芯几何形貌、中心凹陷、剖面畸变和非轴对称结构;光学响应表征可反映有效吸收、活性离子发光分布、能量转移、猝灭行为和激发态动力学。本文比较了不同方法的适用对象、空间尺度、制样要求、定量可靠性、优势与局限。由于单一技术难以同时满足成分定量、大范围空间覆盖、无损检测和功能响应评价的要求,多参数联合表征以及建立成分、局域结构、制备工艺与光学性能之间的定量关联,将成为稀土掺杂光纤均匀性表征的重要发展方向。

     

    Abstract: Rare-earth-doped optical fibers are key gain media for high-power fiber lasers and optical fiber amplifiers. The distribution uniformity of rare-earth ions and co-dopant elements directly affects pump absorption, gain distribution, refractive-index profiles, mode stability, photodarkening behavior, and long-term reliability. This paper reviews recent progress in techniques for characterizing doping uniformity in rare-earth-doped silica fibers and their preforms from three complementary perspectives: elemental composition and local structure, refractive-index distribution, and optical response. Elemental-composition and chemical-state analyses provide information on the spatial distribution, local enrichment, diffusion, and chemical states of dopants, while local-structure characterization further reveals the coordination environments of rare-earth ions, glass-network structures, and defect centers. Refractive-index distribution measurements can be used to evaluate core geometry, central depressions, profile distortions, and non-axisymmetric structures. Optical-response characterization reflects effective absorption, active-ion emission distributions, energy-transfer processes, quenching behavior, and excited-state dynamics. The applicable objects, spatial scales, sample-preparation requirements, quantitative reliability, advantages, and limitations of different methods are comparatively discussed. Since no single technique can simultaneously satisfy the requirements of quantitative compositional analysis, large-area spatial coverage, nondestructive testing, and functional-response evaluation, multiparameter joint characterization and the establishment of quantitative correlations among composition, local structure, fabrication processes, and optical properties will be important directions for future research on doping-uniformity characterization of rare-earth-doped optical fibers.

     

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