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构建用于近红外二区发光增强和抗热猝灭的铁镍能量桥:微波诱导缺陷工程

Construction of an Fe-Ni energy bridge for NIR-II luminescence enhancement and anti-thermal quenching microwave-induced defect engineering.

作者信息

Wang Xiaomeng, Du Jiaren, Hreniak Dariusz, Stręk Wiesław, Jiang Kai, Lin Hengwei

机构信息

International Joint Research Center for Photo-responsive Molecules and Materials, School of Chemical and Material Engineering, Jiangnan University, 214122, Wuxi, China.

Division of Optical Spectroscopy, Institute of Low Temperature and Structure Research, Polish Academy of Sciences, Okólna 2, Wrocław 50-422, Poland.

出版信息

Mater Horiz. 2025 Jul 14;12(14):5277-5286. doi: 10.1039/d5mh00427f.

DOI:10.1039/d5mh00427f
PMID:40314197
Abstract

Near-infrared (NIR) emitting materials have garnered significant attention due to their exceptional application potential in versatile fields such as phosphor-converted light emitting diodes and food and chemical detection. However, developing a Cr-free NIR phosphor exhibiting an emission wavelength exceeding 1000 nm, along with superior luminescent properties remains a significant challenge. In this work, an Fe-Ni energy bridge was constructed in a CaScSbO (CSSO) host lattice for the first time. A surprisingly broad-band short-wave NIR emission from Ni was demonstrated, enabled by effective energy transfer from Fe to Ni. The NIR emission exhibited a full width at half maximum of 173 nm centered at 1560 nm. The microwave-induced treatment process has notably improved the thermal stability of CSSO:Fe,Ni in the NIR-I and NIR-II regions. At a temperature of 150 °C, thermal stability in the NIR-I region was enhanced to nearly 100%, while in the NIR-II region, it achieved approximately 65% stability. This work not only validates the feasibility of utilizing an Fe-Ni energy bridge to develop broad-band NIR-II luminescent materials, but also presents a strategy for enhancing NIR thermal stability, offering valuable insights for the design of high-thermal-stability NIR-II phosphors.

摘要

近红外(NIR)发光材料因其在诸如磷光转换发光二极管以及食品和化学检测等多个领域的特殊应用潜力而备受关注。然而,开发一种发射波长超过1000 nm且具有优异发光性能的无铬近红外磷光体仍然是一项重大挑战。在这项工作中,首次在CaScSbO(CSSO)主晶格中构建了Fe-Ni能量桥。通过从Fe到Ni的有效能量转移,展示了来自Ni的令人惊讶的宽带短波近红外发射。该近红外发射在1560 nm处呈现出半高宽为173 nm的特性。微波诱导处理过程显著提高了CSSO:Fe,Ni在近红外I区和近红外II区的热稳定性。在150°C的温度下,近红外I区的热稳定性提高到近100%,而在近红外II区,其稳定性达到约65%。这项工作不仅验证了利用Fe-Ni能量桥开发宽带近红外II发光材料的可行性,还提出了提高近红外热稳定性的策略,为高热稳定性近红外II磷光体的设计提供了有价值的见解。

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