掺杂量子点的苯乙烯基塑料闪烁体的化学设计原理

IF 0.3 4区 物理与天体物理 Q4 PHYSICS, NUCLEAR
A. Knysh, M. Kirsanov, V. Sosnovtsev, I. Nabiev, P. Samokhvalov
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引用次数: 0

摘要

本文章由计算机程序翻译,如有差异,请以英文原文为准。

Principles of Chemical Designing of Styrene-Based Plastic Scintillators Doped with Quantum Dots

Principles of Chemical Designing of Styrene-Based Plastic Scintillators Doped with Quantum Dots

Plastic scintillators based on polystyrene and other polymers of the vinyl aromatic series (polyvinyltoluene, polyvinylxylene, etc.) have long been used in scintillation detectors because of their short fluorescence lifetimes, low cost, and relative ease of fabrication. On the other hand, these materials have a small light output. Plastic scintillators are usually doped with fluorescent organic dyes to impart scintillation properties to the polymer matrix and increase the light yield. In recent years, considerable interest has been aroused by studies aimed at the use of semiconductor nanocrystals (quantum dots) as dopants for plastic scintillators based on polymer matrices. The most promising materials for this purpose are considered to be CsPbBr3 perovskite nanocrystals and CdSe/ZnS quantum dots of the core/shell type. These materials have high quantum yields, and high effective atomic numbers and can be effectively integrated into polymer matrices while preserving their structural and optical properties. Thus, it can be hypothesized that doping plastic scintillators with quantum dots can significantly improve their light yield and increase their radiation resistance. Here, we propose an approach to the chemical design of plastic scintillators doped with quantum dots, investigate their radioluminescence, and describe the optimal parameters for the fabrication of such composite scintillators by radical polymerization of para-methylstyrene.

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来源期刊
Physics of Atomic Nuclei
Physics of Atomic Nuclei 物理-物理:核物理
CiteScore
0.60
自引率
25.00%
发文量
56
审稿时长
3-6 weeks
期刊介绍: Physics of Atomic Nuclei is a journal that covers experimental and theoretical studies of nuclear physics: nuclear structure, spectra, and properties; radiation, fission, and nuclear reactions induced by photons, leptons, hadrons, and nuclei; fundamental interactions and symmetries; hadrons (with light, strange, charm, and bottom quarks); particle collisions at high and superhigh energies; gauge and unified quantum field theories, quark models, supersymmetry and supergravity, astrophysics and cosmology.
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