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纳米结构聚合物闪烁体中的敏化三重态-三重态湮灭实现脉冲形状甄别

Sensitized Triplet-Triplet Annihilation in Nanostructured Polymeric Scintillators Allows for Pulse Shape Discrimination.

作者信息

Hu Xueqian, Rigamonti Davide, Villa Irene, Pollice Luca, Mauri Michele, Molin Andrea Dal, Tardocchi Marco, Meinardi Francesco, Weder Christoph, Monguzzi Angelo

机构信息

Adolphe Merkle Institute, University of Fribourg, Fribourg, CH-1700, Switzerland.

Institute for Plasma Science and Technology, National Research Council of Italy, Via Roberto Cozzi 53, Milan, 20125, Italy.

出版信息

Adv Mater. 2024 Jul;36(28):e2400443. doi: 10.1002/adma.202400443. Epub 2024 May 2.

Abstract

Scintillating materials emit light when exposed to ionizing radiation or particles and are used for the detection of nuclear threats, medical imaging, high-energy physics, and other usages. For some of these applications, it is vital to distinguish neutrons and charged particles from γ-rays. This is achievable by pulse shape discrimination (PSD), a time-gated technique, which exploits that the scintillation kinetics can depend on the nature of the incident radiation. However, it proves difficult to realize efficient PSD with plastic scintillators, which have several advantages over liquid or crystalline scintillating materials, including mechanical robustness and shapeability. It is shown here that sensitive and rapid PSD is possible with nanostructured polymer scintillators that consist of a solid polymer matrix and liquid nanodomains in which an organic dye capable of triplet-triplet annihilation (TTA) is dissolved. The liquid nature of the nanodomains renders TTA highly efficient so that delayed fluorescence can occur at low energy density. The nanostructured polymer scintillators allow discriminating α particles, neutrons, and γ-rays with a time response that is better than that of commercial scintillators. Exploiting that the liquid nanodomains can facilitate energy transfer processes otherwise difficult to realize in solid polymers, an auxiliary triplet sensitizer is incorporated. This approach further increases the scintillator's sensitivity toward α particles and neutrons and other high-energy processes where localized interactions are involved.

摘要

闪烁材料在受到电离辐射或粒子照射时会发光,可用于检测核威胁、医学成像、高能物理等领域。对于其中一些应用,区分中子和带电粒子与γ射线至关重要。这可以通过脉冲形状甄别(PSD)来实现,PSD是一种时间选通技术,它利用了闪烁动力学可能取决于入射辐射的性质。然而,事实证明,使用塑料闪烁体很难实现高效的PSD,塑料闪烁体相对于液体或晶体闪烁材料具有若干优势,包括机械强度高和可成型性好。本文表明,由固体聚合物基质和溶解有能够进行三重态-三重态湮灭(TTA)的有机染料的液体纳米域组成的纳米结构聚合物闪烁体能够实现灵敏且快速的PSD。纳米域的液体性质使TTA非常高效,从而在低能量密度下可以产生延迟荧光。纳米结构聚合物闪烁体能够以比商用闪烁体更好的时间响应来区分α粒子、中子和γ射线。利用液体纳米域可以促进在固体聚合物中难以实现的能量转移过程,引入了一种辅助三重态敏化剂。这种方法进一步提高了闪烁体对α粒子和中子以及其他涉及局部相互作用的高能过程的灵敏度。

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