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Enhanced tunable mid-infrared emissions by controlling rare earth ion energy transfer processes in multifunctional multiphase solids

机译:通过控制多功能多相固体中的稀土离子能量转移过程来增强可调谐中红外排放

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摘要

Owing to the increasing application of high-performance and multifunctional mid-infrared (MIR) optoelectronic devices, it is important to achieve a high emission efficiency and broadband tunable luminescence. In this study, nanocrystalline units with unique properties were integrated into an amorphous frame with high transmittance and infinite ductility to achieve an enhanced MIR emission. In the single active ion-doped system, owing to the combination of the lower phonon energy of the crystal, the fixed position of the crystal lattice, and the glass transparency, a substantial increase in the infrared fluorescence intensity was achieved. Particularly, an excellent 3 mu m luminescence was realized by the stable composite material. In the co-doped system, a bottom-up strategy was adopted to achieve full coverage of the 2 mu m MIR atmospheric window, and the results confirmed that the spatial distribution of the optically active nanocrystal units in the glass frame effectively controlled the energy transfer processes.
机译:随着高性能、多功能中红外(MIR)光电子器件的广泛应用,实现高发射效率和宽带可调谐发光显得尤为重要。在这项研究中,具有独特性能的纳米晶单元被集成到具有高透射率和无限延展性的非晶框架中,以实现增强的MIR发射。在单活性离子掺杂体系中,由于晶体较低的声子能量、晶格的固定位置和玻璃的透明性,红外荧光强度得到了显著提高。特别是,稳定的复合材料实现了优异的3μm发光。在共掺杂系统中,采用自下而上的策略来实现2μm MIR大气窗口的完全覆盖,结果证实了光学活性纳米晶体单元在玻璃框架中的空间分布有效地控制了能量传递过程。

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