系统间交叉
材料科学
闪烁体
X射线
原子物理学
核物理学
光学
物理
探测器
激发态
单重态
作者
Shorooq A. Alomar,Simil Thomas,Jianxin Wang,Partha Maity,Zhen Mu,Bashir Hassanov,George Healing,Issatay Nadinov,Hadeer Alsayed,Osman M. Bakr,Xiaogang Liu,Mohamed Eddaoudi,Husam N. Alshareef,Omar F. Mohammed
标识
DOI:10.1002/adfm.202516012
摘要
Abstract Advanced X‐ray imaging scintillators hold great potential for medical diagnostics, security screening, and aerospace applications. However, organic materials encounter significant challenges in achieving high X‐ray absorption and efficient exciton utilization due to their low atomic number and weak intersystem crossing (ISC), resulting in limited triplet emission when exposed to light excitation. Here, organometallic materials incorporating heavy‐atom metal centers and organic linkers are developed as highly efficient X‐ray imaging scintillators, exhibiting near‐unity ISC and remarkable phosphorescence efficiency. Their optimized triplet‐state properties and enhanced exciton utilization enable superior performance in X‐ray imaging, offering improved sensitivity and spatial resolution. Notably, these materials achieve an ultralow X‐ray detection limit of 84 nGy s −1 , an impressive imaging resolution of 26.9 lp mm −1 , and an outstanding light yield of 70.5 k photons MeV −1 , substantially outperforming conventional organic and inorganic scintillators available in the X‐ray imaging market. Moreover, these organometallic scintillators demonstrate nearly a threefold improvement in X‐ray sensitivity at low temperatures, highlighting their significant potential for low‐temperature X‐ray imaging.
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