Alomar Shorooq A, Wang Jian-Xin, Gutiérrez-Arzaluz Luis, Thomas Simil, Alshareef Husam N, Bakr Osman M, Eddaoudi Mohamed, Mohammed Omar F
Advanced Membranes and Porous Materials Center and KAUST Catalysis Center, Division of Physical Science and Engineering, King Abdullah University of Science and Technology, Thuwal 23955-6900, Saudi Arabia.
Materials Science and Engineering, Division of Physical Sciences and Engineering (PSE), King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Saudi Arabia.
ACS Appl Mater Interfaces. 2024 Dec 25;16(51):70973-70979. doi: 10.1021/acsami.4c11027. Epub 2024 Oct 18.
Novel scintillation materials have played an indispensable role in the recent remarkable progress witnessed for X-ray imaging technology. Herein, a high-performance X-ray scintillation screen was developed based on a highly efficient hybrid system combining inorganic ZnS (Ag) with thermally activated delayed fluorescence (TADF) scintillator materials via an interfacial energy transfer (EnT) mechanism. ZnS (Ag) has a high X-ray absorption capacity and functions as the initial layer for efficiently converting high-energy X-ray photons into low-energy visible light (acting as a sensitizer) while also serving as an energy donor. The TADF component, on the contrary, is an energy acceptor and forms an active scintillating layer. By harnessing TADF chromophores that can efficiently capture both singlet and triplet excitons, our composite material offers a remarkable spatial imaging resolution of 24 line pairs per millimeter, surpassing those of the majority of existing organic and inorganic scintillators. Further, our interfacial energy transfer strategy effectively amplifies the radioluminescence intensity of the TADF scintillator by a factor of 75, offering an outstanding light yield of 38,000 photons/MeV. This advancement represents a remarkable breakthrough in organic X-ray scintillation technology and is a notable achievement within the X-ray imaging field, paving the way for novel applications in medical imaging and security inspection.
新型闪烁材料在X射线成像技术最近取得的显著进展中发挥了不可或缺的作用。在此,基于一种高效的混合系统开发了一种高性能X射线闪烁屏,该系统通过界面能量转移(EnT)机制将无机ZnS(Ag)与热激活延迟荧光(TADF)闪烁体材料相结合。ZnS(Ag)具有高X射线吸收能力,作为初始层,可将高能X射线光子有效转换为低能可见光(充当敏化剂),同时还作为能量供体。相反,TADF组件是能量受体,形成活性闪烁层。通过利用能够有效捕获单重态和三重态激子的TADF发色团,我们的复合材料提供了每毫米24线对的出色空间成像分辨率,超过了大多数现有的有机和无机闪烁体。此外,我们的界面能量转移策略有效地将TADF闪烁体的辐射发光强度放大了75倍,提供了38,000光子/兆电子伏的出色光产额。这一进展代表了有机X射线闪烁技术的重大突破,是X射线成像领域的一项显著成就,为医学成像和安全检查中的新应用铺平了道路。