An efficient and thermally stable source with Cr3+ near-infrared luminescence for non-destructive testing applications

IF 6.7 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Materials Today Chemistry Pub Date : 2024-01-12 DOI:10.1016/j.mtchem.2024.101918
Tao Yang, Lingxiang Chu, Yi Qin, Qiang Zhou, Jing Wan, Huaijun Tang, Yanqing Ye, Zhengliang Wang
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Abstract

The quest for efficient and heat-resistant near-infrared (NIR) phosphors to create advanced smart NIR lighting sources continues to pose a significant challenge. This study introduces a new fluoride phosphor, Cr3+-doped Cs2NaScF6, wherein the Cs2NaScF6 host provides a weak crystal field suitable for Cr3+ doping. This arrangement allows the production of a broad NIR emission peaking at 797 nm, coupled with a notable internal quantum efficiency of 90.8 % when excited by 446 nm blue light. Meanwhile, due to the relatively mild electron-phonon coupling effect and a high activation energy within this phosphor, the overall NIR emission intensity at 150 °C sustains 81.8 % of its level at room temperature. This highlights exceptional thermal stability in photoluminescence performance. Combining the Cs2NaScF6:Cr3+ phosphor with a commercially available blue InGaN chip to construct a NIR light-emitting diode (LED) device, which exhibits efficient and stable NIR emission, making it suitable for non-destructive testing applications. These findings affirm that the Cs2NaScF6:Cr3+ phosphor can function as a promising candidate to fabricate high-performance device for NIR spectroscopy application.

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用于无损检测应用的高效热稳定 Cr3+ 近红外发光源
寻找高效、耐热的近红外荧光粉来制造先进的智能近红外照明光源仍然是一项重大挑战。本研究介绍了一种新型氟化物荧光粉,即掺杂 Cr3+ 的 Cs2NaScF6,其中 Cs2NaScF6 主晶提供了适合掺杂 Cr3+ 的弱晶场。这种排列方式可产生峰值为 797 纳米的宽近红外发射,在 446 纳米蓝光的激发下,内部量子效率可达 90.8%。同时,由于这种荧光粉具有相对温和的电子-声子耦合效应和较高的活化能,其在 150 °C 时的整体近红外发射强度可维持在室温水平的 81.8%。这凸显了光致发光性能的优异热稳定性。将 Cs2NaScF6:Cr3+ 荧光粉与市场上销售的蓝色 InGaN 芯片相结合,构建了一个近红外发光二极管(LED)器件,该器件具有高效、稳定的近红外发射性能,使其适用于非破坏性检测应用。这些研究结果证实,Cs2NaScF6:Cr3+荧光粉有望成为制造近红外光谱应用高性能器件的候选材料。
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来源期刊
CiteScore
8.90
自引率
6.80%
发文量
596
审稿时长
33 days
期刊介绍: Materials Today Chemistry is a multi-disciplinary journal dedicated to all facets of materials chemistry. This field represents one of the fastest-growing areas of science, involving the application of chemistry-based techniques to the study of materials. It encompasses materials synthesis and behavior, as well as the intricate relationships between material structure and properties at the atomic and molecular scale. Materials Today Chemistry serves as a high-impact platform for discussing research that propels the field forward through groundbreaking discoveries and innovative techniques.
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