基于能量转移的 X 射线成像闪烁体

IF 19.1 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Chem Pub Date : 2025-01-09 DOI:10.1016/j.chempr.2024.07.035
Jian-Xin Wang , Osama Shekhah , Osman M. Bakr , Mohamed Eddaoudi , Omar F. Mohammed
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引用次数: 0

摘要

X 射线成像闪烁体对于影响我们日常生活的众多技术来说至关重要,其中包括医疗射线照相术、计算机断层扫描和安全检查。有机材料因其低毒性、高稳定性和大面积制造而成为 X 射线成像闪烁体的潜在替代品。然而,有机材料对 X 射线的吸收截面小、激子利用效率低,限制了其实际应用和商业化。不过,这些缺点可以通过合适的 X 射线敏化剂进行有效的能量转移来缓解。在本综述中,我们总结了利用各种 X 射线敏化剂和发射中心制造基于能量转移的高性能闪烁体的最新进展,并详细解释了相应的能量转移机制及其对 X 射线成像闪烁体工作的巨大影响。此外,我们还仔细考虑了成像系统中各种因素(包括 X 射线源、光物质相互作用和光电探测器)对整体成像性能的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Energy transfer-based X-ray imaging scintillators

Energy transfer-based X-ray imaging scintillators

Energy transfer-based X-ray imaging scintillators
X-ray imaging scintillators are essential for numerous technologies that impact our daily lives, including medical radiography, computed tomography, and security inspection. Organic materials have emerged as potential alternatives for X-ray imaging scintillators due to their low toxicity, high stability, and large-area fabrication. However, their low X-ray absorption cross-section and inefficient exciton utilization efficiency limit their practical applications and commercialization. Nevertheless, these drawbacks can be mitigated through efficient energy transfer from suitable X-ray sensitizers. In this review, we summarize recent progress in fabricating high-performance energy transfer-based scintillators using a variety of X-ray sensitizers and emission centers and provide a detailed interpretation of the corresponding energy transfer mechanisms and their tremendous impact on the operation of X-ray imaging scintillators. Furthermore, we have also carefully considered the impact of various factors within the imaging system, including the X-ray source, light-matter interaction, and photodetector, on the overall imaging performance.
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来源期刊
Chem
Chem Environmental Science-Environmental Chemistry
CiteScore
32.40
自引率
1.30%
发文量
281
期刊介绍: Chem, affiliated with Cell as its sister journal, serves as a platform for groundbreaking research and illustrates how fundamental inquiries in chemistry and its related fields can contribute to addressing future global challenges. It was established in 2016, and is currently edited by Robert Eagling.
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