Zhou Zixing, Wang Xiao, Lv Anqi, Ding Meijuan, Song Zhicheng, Ma Huili, An Zhongfu, Huang Wei
Institute of Flexible Electronics (IFE, Future Technologies), Xiamen University (XMU), Xiamen, 361002, China.
Key Laboratory of Flexible Electronics (KLOFE) & Institute of Advanced Materials (IAM), School of Flexible Electronics (Future Technologies), Nanjing Tech University (Nanjing Tech), Nanjing, 211816, China.
Adv Mater. 2024 Nov;36(47):e2407916. doi: 10.1002/adma.202407916. Epub 2024 Oct 7.
Scintillators have attracted significant attention due to their wide-ranging applications in both industrial and medical fields. However, one of the ongoing challenges is the efficient utilization of triplet excitons to achieve high radioluminescence efficiency. Here, a series of purely organic phosphors is presented for X-ray scintillation, employing a combined rigid and flexible host-guest doping strategy. The doped crystals exhibit a remarkable maximum phosphorescence efficiency of 99.4% under UV excitation. Furthermore, upon X-ray irradiation, the radioluminescence intensities of the doped phosphors are markedly higher compared to their single-component crystal counterparts. Through systematic investigations, it is demonstrated the crucial role of confining isolated chromophores in enhancing scintillation efficiency. Additionally, a transparent scintillator screen fabricated with the doped phosphor exhibits excellent X-ray imaging performance, achieving a high spatial resolution of 18.0 lp mm. This work not only offers valuable insights into suppressing non-radiative transitions of triplet excitons during scintillation but also opens a new avenue for designing highly efficient purely organic phosphorescent scintillators.
闪烁体因其在工业和医学领域的广泛应用而备受关注。然而,当前面临的挑战之一是如何有效利用三重态激子以实现高辐射发光效率。在此,本文介绍了一系列用于X射线闪烁的纯有机磷光体,采用了刚性和柔性相结合的主体-客体掺杂策略。掺杂后的晶体在紫外激发下表现出高达99.4%的显著最大磷光效率。此外,在X射线照射下,掺杂磷光体的辐射发光强度明显高于其单组分晶体对应物。通过系统研究,证明了限制孤立发色团在提高闪烁效率方面的关键作用。此外,用掺杂磷光体制备的透明闪烁体屏幕表现出优异的X射线成像性能,实现了18.0 lp/mm的高空间分辨率。这项工作不仅为抑制闪烁过程中三重态激子的非辐射跃迁提供了有价值的见解,还为设计高效的纯有机磷光闪烁体开辟了一条新途径。