闪烁体
放射发光
系统间交叉
光电子学
光致发光
化学
量子产额
光子
激发态
磷光
荧光
多叶准直器
荧光粉
产量(工程)
单重态
激子
材料科学
闪烁
接受者
光化学
光学
准分子
作者
Mengyang Dong,Yushan Zhang,Ziyang Wang,Yaru Gao,Jingyi Shan,Yitong Jiao,Ruizi Li,Wenbo Hu,Huili Ma,Zhongfu An,Long Gu
摘要
Organic scintillators that combine high triplet-exciton utilization with rapid radioluminescence are vital for achieving high-resolution dynamic X-ray imaging. Thermally activated delayed fluorescence (TADF) scintillators offer an attractive route to efficient triplet harvesting, yet conventional systems face an intrinsic trade-off between radioluminescence efficiency and decay lifetime. This limitation originates from inherently slow reverse intersystem crossing (RISC), which is difficult to accelerate because minimizing the singlet–triplet energy gap (Δ E ST ) often reduces spin–orbit coupling (SOC). Here, we present a molecular design strategy that overcomes this constraint by simultaneously reducing Δ E ST and enhancing SOC through strengthened hybridization between charge-transfer (CT) and locally excited (LE) states, leading to a hybridized 3 LE/ 3 CT triplet manifold coupled to a predominantly 1 CT singlet state. Guided by this principle, we developed three TADF scintillators by pairing a 2-chloro-7-fluoroquinazoline acceptor with phenoselenazine, phenothiazine, or phenoxazine donors. These scintillators exhibit a high photoluminescence quantum yield of 96.3% and an accelerated RISC rate approaching 10 7 s –1 . Impressively, under X-ray irradiation, they achieve a light yield of 26508 photons M eV –1 and a fast radioluminescence lifetime of 3 μs, enabling both high-resolution static imaging and real-time dynamic radiography. This work provides a generalizable molecular design strategy for developing high-performance TADF scintillators for X-ray imaging.
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