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Suppressing the thermal degradation of bismuth near-infrared luminescence in optical amorphous materials via topologically polymerized network structures

机译:通过拓扑聚合的网络结构抑制光学非晶材料中铋近红外发光的热降解

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摘要

Bismuth (Bi)-doped laser materials have emerged as an attractive gain medium for the development of a new generation of fiber lasers and optical amplifiers because of their superior broadband near-infrared (NIR) luminescence covering the entire optical communication window. For their practical applications, the thermal response of laser materials should be considered. However, to the best of our knowledge, Bi NIR emission usually involves severe thermal degradation due to the easy conversion between various Bi species. In this study, we have investigated the thermal degradation properties of Bi NIR emission in the Al2O3-GeO2 glass system with different compositions and interpreted their dependencies in terms of their microscopic topological network structure. As a result, thermal degradation was entirely suppressed via a polymerized glass network structure. The addition of Li2O caused a serious thermal degradation of Bi NIR emission along with the depolymerization of the glass network structure, as revealed by the Fourier-transform infrared (FTIR) and Al-27 nuclear magnetic resonance (NMR) spectra. When Mg ions replaced Li ions, thermal degradation efficiently weakened. This may be attributed to the fact that depolymerization was significantly suppressed by introducing Mg-O- into the network structure units. In order to prevent the depolymerization of the glass network structure, we introduced trace amounts of Bi2O3 as both network modifiers and active ions in the glass system. Correspondingly, the thermal degradation of Bi NIR emission was completely inhibited. This study resolves the problem of thermal degradation of Bi NIR emission in glasses, and it can facilitate the design of Bi-doped laser glasses with stable luminescence properties and for the fabrication of fibers in the future.
机译:铋(BI) - 掺杂的激光材料作为一种有吸引力的增益介质,用于开发新一代光纤激光器和光放大器,因为它们的宽带近红外(NIR)发光覆盖整个光学通信窗口。为其实际应用,应考虑激光材料的热响应。然而,据我们所知,由于各种BI物种之间的易于转换,BI NIR发射通常涉及严重的热降解。在本研究中,我们研究了在Al2O3-Geo2玻璃系统中具有不同组成的Bi Nir排放的热降解特性,并在微观拓扑网络结构方面解释了它们的依赖性。结果,通过聚合的玻璃网络结构完全抑制了热劣化。 Li2O的添加引起了Bi Nir发射的严重热劣化以及玻璃网络结构的解聚,如傅里叶变换红外(FTIR)和Al-27核磁共振(NMR)光谱所揭示的。当Mg离子更换Li离子时,热降解有效地减弱。这可能归因于通过将Mg-O-进入网络结构单元来显着抑制解聚的事实。为了防止玻璃网络结构的解聚,我们在玻璃系统中引入了痕量的BI2O3作为网络改性剂和有效离子。相应地,完全抑制了Bi Nir排放的热降解。本研究解决了玻璃中Bi Nir排放的热降解的问题,它可以促进双掺杂激光玻璃的设计,其中发光性能稳定,并在将来制造纤维。

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    South China Univ Technol Guangdong Engn Technol Res &

    Dev Ctr Special Opt Guangdong Prov Key Lab Fiber Laser Mat &

    Appl Tec Sch Mat Sci &

    Engn State Key Lab Luminescent Mat Guangzhou 510641 Guangdong Peoples R China;

    South China Univ Technol Guangdong Engn Technol Res &

    Dev Ctr Special Opt Guangdong Prov Key Lab Fiber Laser Mat &

    Appl Tec Sch Mat Sci &

    Engn State Key Lab Luminescent Mat Guangzhou 510641 Guangdong Peoples R China;

    South China Univ Technol Guangdong Engn Technol Res &

    Dev Ctr Special Opt Guangdong Prov Key Lab Fiber Laser Mat &

    Appl Tec Sch Mat Sci &

    Engn State Key Lab Luminescent Mat Guangzhou 510641 Guangdong Peoples R China;

    South China Univ Technol Guangdong Engn Technol Res &

    Dev Ctr Special Opt Guangdong Prov Key Lab Fiber Laser Mat &

    Appl Tec Sch Mat Sci &

    Engn State Key Lab Luminescent Mat Guangzhou 510641 Guangdong Peoples R China;

    South China Univ Technol Guangdong Engn Technol Res &

    Dev Ctr Special Opt Guangdong Prov Key Lab Fiber Laser Mat &

    Appl Tec Sch Mat Sci &

    Engn State Key Lab Luminescent Mat Guangzhou 510641 Guangdong Peoples R China;

    South China Univ Technol Guangdong Engn Technol Res &

    Dev Ctr Special Opt Guangdong Prov Key Lab Fiber Laser Mat &

    Appl Tec Sch Mat Sci &

    Engn State Key Lab Luminescent Mat Guangzhou 510641 Guangdong Peoples R China;

    Qufu Normal Univ Shandong Prov Key Lab Laser Polarizat &

    Informat Sch Phys &

    Phys Engn Qufu 273165 Shandong Peoples R China;

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  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
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