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Ligand-driven wavelength-tunable and ultra- broadband infrared luminescence in single-ion-doped transparent hybrid materials

机译:单离子掺杂透明杂化材料中配体驱动的波长可调和超宽带红外发光

摘要

Here, tuning of the optical properties of emission centers by tailoring the ligand fields is investigated. Experimentally, it is demonstrated that Ni 2 can act as a single emission species in multiple octahedral local environments. Nanocrystal-embedded hybrid materials are employed as hosts in order to take advantage of their convenience in local environment design for practical applications. Novel composite gain materials with high transparence are successfully made, and show interesting wavelength-tunable and ultrabroadband infrared luminescence covering the whole near-infrared region from 1 100 to 1 800 nm. The infrared luminescence peak positions can be finely tuned from 1 300 to 1 450 and to 1 570 nm, with the largest full width at half maximum being about 400nm and covering the telecommunication bands at 1 200-1 500 nm. According to the results of characterization, the unusual luminescence, interestingly, originates from Ni2 in nanocrystals and the doping efficiency of Ni2 is surprisingly high. The results demonstrate that the method presented may be an effective way to fabricate multifunctional light sources with various fundamental multifunctional applications from efficient broadband optical amplifiers to bio-imaging.
机译:在这里,研究了通过调整配体场来调节发射中心的光学性质。实验证明,Ni 2可以在多个八面体局部环境中充当单个发射物种。嵌入纳米晶体的杂化材料被用作主体,以便在实际应用的局部环境设计中利用它们的便利性。成功制备了具有高透明度的新型复合增益材料,它们显示出有趣的波长可调和超宽带红外发光,覆盖了从1100 nm到1800 nm的整个近红外区域。可以将红外发光峰的位置从1300微调到1 450 nm,微调到1 570 nm,最大半峰全宽约为400 nm,并覆盖1200-1 500 nm的电信频段。根据表征结果,有趣的是,异常发光源自纳米晶体中的Ni2,并且Ni2的掺杂效率出奇地高。结果表明,所提出的方法可能是制造具有各种基本多功能应用(从有效的宽带光放大器到生物成像)的多功能光源的有效方法。

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