闪烁体
放射发光
系统间交叉
材料科学
光电子学
磷光
荧光
激子
光子
量子产额
发光
本齐尔
光化学
热的
光致发光
猝灭(荧光)
生物成像
荧光粉
闪烁
纳米技术
比克西顿
荧光寿命成像显微镜
联轴节(管道)
热稳定性
化学
量子效率
产量(工程)
作者
Lifan Zeng,Yongjing Deng,Yongkang Zhu,Guohui Xing,Aoxi Yu,Haixia Cui,Ruiqi Wei,Shujuan Liu,Qiang Zhao
摘要
ABSTRACT Organic scintillators have attracted great attention in the fields of medical imaging, radiotherapy, and non‐destructive testing. However, most of the organic scintillators suffer from low exciton utilization and severe thermal quenching. Herein, we report a series of high‐temperature‐adaptive scintillators based on semi‐cage organometallic [Cu(P^P)(N^N)] + complexes. Through a synergistic molecular design combining Cu(I)‐moderated spin–orbit coupling to enable efficient reverse intersystem crossing (RISC) and rigid molecular configuration to suppress non‐radiative decay, these complexes exhibit thermally activated delayed fluorescence and radioluminescence activity. The optimized Cu‐p‐Br delivers a high light yield of 28 348 photons MeV −1 and excellent thermal quenching resistance. Remarkably, the radioluminescence intensity at 383 K still maintains 76% of that at room temperature. We further demonstrate its capability for high‐resolution x‐ray imaging under both ambient and high‐temperature conditions. This work not only presents a class of efficient organometallic scintillators with exceptional thermal robustness but also establishes a design framework integrating electronic and steric control for developing thermally stable thermally activated delayed fluorescence materials, thereby advancing scintillator technology toward demanding real‐world environments.
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