正交晶系
发光
材料科学
局部对称性
化学物理
荧光粉
衍射
热稳定性
协调数
同步加速器
钙钛矿(结构)
联轴节(管道)
激发
晶体结构
热的
工作(物理)
分子动力学
结晶学
镧系元素
Crystal(编程语言)
成核
分子物理学
非谐性
对称(几何)
纳米技术
能源景观
强度(物理)
作者
Jiazheng Li,Jian Xu,Jumpei Ueda,Michele Back,Dongkyu Kang,Ruilin Zheng,Natalia Majewska,Takayuki Nakanishi,Kohsei Takahashi,Seika Tokumitsu,Setsuhisa Tanabe
标识
DOI:10.1021/acs.chemmater.6c01123
摘要
Abstract Cr3+-activated perovskite phosphors are promising near-infrared (NIR) emitters, yet their luminescent behaviors are often interpreted primarily in terms of average crystal field effects. Herein, we investigate Sr1–nBanHfO3:Cr3+ as a model system to elucidate the role of local coordination. While synchrotron diffraction reveals a continuous structural evolution from orthorhombic to cubic symmetry with increasing Ba content, Cr K-edge XANES/EXAFS, DFT-assisted local structure analysis, and spectral simulations reveal that the Cr-centered local coordination environment evolves differently from the average crystallographic framework. This difference between average and local structural evolution strongly influences the luminescence behavior, including excitation intensity ratios, R-line evolution, and thermal coupling between the 4T2 and 2E states. Quantitative analysis shows a nonmonotonic variation of C/B, a continuous nephelauxetic trend, and a systematic decrease in both ΔE(E–T) and thermal activation energy ΔEa, indicating that local coordination variation plays a critical role in the excited-state dynamics beyond a simple average crystal-field description. The Sr-rich composition exhibits superior thermal stability and emission efficiency, enabling proof-of-concept phosphor-converted NIR LED (pc-NIR LED) demonstrations for short-range NIR illumination, imaging, and material identification. This work highlights local coordination engineering as a key strategy for designing high-performance NIR-emitting materials.
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