A Unified Photophysical Framework for Anomalous Cr‐Activated Near‐Infrared Emission in Oxide Hosts

荧光粉 八面体 杂质 材料科学 四面体 宽带 格子(音乐) 发光 化学物理 局部对称性 氧化物 点反射 发射光谱 晶体缺陷 凝聚态物理 纳米技术 光电子学 对称(几何) 光发射 稀土 结晶学 光致发光 八面体对称 自发辐射 红外线的 近红外光谱 化学 分子物理学 卤化物 晶格常数
作者
Lingkun Zhang,Mingzhe Liu,Qiaoling Chen,Anfei Chen,Qinshi Hu,Min Yin,Longbing Shang,Chang‐Kui Duan
出处
期刊:Laser & Photonics Reviews [Wiley]
标识
DOI:10.1002/lpor.71519
摘要

ABSTRACT Broadband near‐infrared (NIR) emission from Cr‐activated oxides has attracted increasing interest for applications in nondestructive inspection, night vision, and biomedical photonics. However, several recently reported NIR bands have been attributed to unconventional coordination geometries of , in conflict with established mechanistic understanding and hindering the development of reliable materials‐design and optimization principles. Here we present a unified photophysical framework for these anomalous emissions by combining first‐principles defect thermodynamics with configuration‐coordinate excited‐state modeling. Our analysis demonstrates that tetrahedrally coordinated is intrinsically non‐emissive. The reported anomalous NIR emissions—including the 730–780 nm bands in tetrahedral gallates, the 900 nm emission in spinels, and the apparent multicenter emission in —originate instead from locally distorted octahedral environments. Such distortions arise from lattice heterogeneity, intrinsic point defects (e.g., cation vacancies), solid‐solution–induced site inequivalence, or trace impurity phases formed during synthesis. This unified interpretation resolves long‐standing inconsistencies in the literature and identifies distorted octahedral coordination as the key structural motif governing broadband Cr‐based NIR emission in the 700–1000 nm range. The results establish physically grounded design guidelines for engineering high‐performance Cr‐activated NIR phosphors through controlled crystal‐field weakening and local symmetry breaking.
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