激子
机制(生物学)
X射线
系列(地层学)
群(周期表)
化学
物理
生物
光学
凝聚态物理
量子力学
古生物学
有机化学
作者
Xia Wang,Zhe Zhang,Huili Ma,Zuju Ma,Mengjia Yuan,He Bian,Yicen Liu,Xingyun Luo,Fuyin Ma,Yanlong Wang,Yihui Yuan,Ning Wang,Shuao Wang,Wei Liu
出处
期刊:Angewandte Chemie
[Wiley]
日期:2025-06-18
卷期号:64 (33): e202505256-e202505256
被引量:10
标识
DOI:10.1002/anie.202505256
摘要
Scintillators play vital roles in fields such as medical imaging, high-energy physics, astronomy, and radiation monitoring. Their operational principle, rooted in the excitation of high-energy radiation, underscores that luminescence efficiency in scintillators is fundamentally limited by their capacity to harness triplet excitons. In this context, thermally activated delayed fluorescence (TADF) molecules present a promising avenue, enabling the efficient utilization of triplet excitons through thermally activated up-conversion, thereby advancing the development of superior scintillators. Our investigation reveals a T1-blocked TADF mechanism in H4TCPE, where efficient singlet-triplet exciton transfer arises from the minimized S1-T2 energy gap (0.18 eV). Unlike conventional TADF molecules, H4TCPE features carboxylic acid groups that enable heavy metal coordination to enhance X-ray attenuation. Using tetravalent metals (Zr, Hf, and Th) as nodes and H4TCPE as linkers, we fabricated metal-organic frameworks (MOFs) that synergize H4TCPE's TADF properties with metal-enhanced radiation absorption. The resulting MOFs show X-ray detection and imaging performances superior to pure H4TCPE (20.0 lp mm-1 and 1.15 µGy s-1 for Th-TCPE vs. <14.3 lp mm-1 and 5.01 µGy s-1 for H4TCPE), with efficacy correlating to metal atomic number. This work not only broadens TADF molecular diversity through a new energy transfer mechanism and pioneers TADF-MOF integration for advanced radiation detection.
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