发光
光致发光
材料科学
Crystal(编程语言)
猝灭(荧光)
化学物理
荧光
相变
光电子学
晶体结构
格子(音乐)
卤化物
分子物理学
热的
相(物质)
凝聚态物理
单晶
光发射
联轴节(管道)
光化学
结晶学
晶场理论
分析化学(期刊)
持续发光
自发辐射
化学
纳米技术
作者
Bing Xu,Tianfu Gao,Jiandi Yuan,Xiao Jin,Peijie Zhang,Shuwen Xue,Deng Wang,Xuping Liu,Weifeng Zhao,Qinghua Li
摘要
ABSTRACT Elucidating the intrinsic origin of near‐infrared (NIR) luminescence in Mn 2+ ‐activated materials remains a long‐standing contentious issue. Herein, we systematically clarify this origin for the first time, resolving the long‐standing controversy over Mn 2+ NIR emission properties. Specifically, precise modulation of the HCl/ethanol volume ratio in the reaction medium enables the controlled‐continuous phase transition of manganese‐based halide perovskites, yielding crystalline phases with distinct photoluminescent properties: CsMnCl 3 emits deep‐red light at 660 nm, whereas Cs 2 MnCl 4 ·2H 2 O exhibits efficient NIR luminescence at 780 nm with exceptional thermal stability. More strikingly, Cs 2 MnCl 4 ·2H 2 O exhibits a pronounced anti‐thermal quenching effect, with its relative photoluminescence (PL) intensity rising to about 300% of that at room temperature at 420 K. Through systematic structural characterization, local coordination environment analysis, crystal field parameter quantification, and first‐principles calculations, we established a clear structure‐optical property relationship that effectively eliminates interference from local crystal field variations induced by host lattice differences—a critical limitation confounding previous studies. This work establishes a reliable, tunable experimental platform, laying a solid foundation for elucidating the intrinsic mechanism of the Mn 2+ ‐based NIR luminescence. Furthermore, the anti‐thermal quenching behavior enhances its high‐temperature optical performance, demonstrating great potential for high‐temperature imaging and advanced anti‐counterfeiting applications.
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