闪烁体
电荷(物理)
Atom(片上系统)
空格(标点符号)
物理
原子物理学
传输(计算)
材料科学
核物理学
光学
粒子物理学
探测器
计算机科学
并行计算
嵌入式系统
操作系统
作者
Chensen Li,Yaohui Li,Minghui Wu,Fancheng Kong,Binxia Jia,Zonghang Liu,Philip C. Y. Chow,Zheng Zhao,Ryan T. K. Kwok,Jacky W. Y. Lam,Yucheng Liu,Shengzhong Liu,Ben Zhong Tang
标识
DOI:10.26434/chemrxiv-2025-dhj18
摘要
The design and fabrication of organic X-ray imaging scintillators with large Stokes shift, narrow-band, fast, and efficient radioluminescence becomes an attractive research direction in many fields, such as medical diagnostics, scientific instruments and high-energy physics. However, the trade-off between these diverse scintillation properties is an enormous challenge facing almost all scintillators. To overcome this limitation, in this work, we developed a strategy based on through-space heavy atom-π interactions to improve the performance of organic scintillators by introducing alkyl bromides into hybridized local and charge transfer (HLCT) emitters. Specifically, the HLCT state's locally excited characters result in a short radiative lifetime (3.74 ns) and a narrow radioluminescence bandwidth (56 nm). The HLCT state's charge-transfer features yield a large Stokes shift (> 100 nm). Meanwhile, through-space bromine-π interactions enhance the photoluminescence quantum yield to 100%. Notably, a high X-ray imaging resolution (> 40.0 lp mm−1) was achieved, making the highest spatial resolution for organic scintillators reported to date. This work provides a method to design scintillators with excellent comprehensive performances and paves the way towards promising applications for high-resolution X-ray imaging.
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