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Analysis of scintillation light intensity by microscopic radiation transport calculation and Förster quenching model

机译:通过微观辐射传输计算和Förster猝灭模型分析闪烁光强度

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摘要

The scintillation light yield of plastic scintillator considering the quenching effect is reproduced by a calculation model based on a track-structure simulation code and the Förster effect. Energy deposition and its nm-scale spatial arrangement in the irradiation by electrons, protons, and heavy ions (4He to 81Br) in an NE-102A scintillator were simulated by a track-structure simulation code. The spatial arrangements of the excited molecules emitting scintillation light and those dissipating the excitation energy were then obtained to calculate the strength of the quenching effect. Light emission from the excited molecules was integrated to finally obtain the observable light yield. The calculated light yields are in good agreement with the earlier measurement data. Moreover, in the case of low-LET particle incidence, a statistical micro-dosimetric model can substitute the track-structure simulation code for reproducing the light yield.
机译:通过基于轨道结构仿真代码和Förster效应的计算模型,可以复制考虑了淬灭效应的塑料闪烁体的闪烁光产量。利用NE-102A闪烁体模拟了电子,质子和重离子( 4 He到 81 Br)辐照下的能量沉积及其纳米尺度的空间排列。轨道结构仿真代码。然后获得发射闪烁光的激发分子的空间布置和耗散激发能的空间布置,以计算猝灭效应的强度。来自激发分子的发光被积分以最终获得可观察到的光产率。计算出的光输出与先前的测量数据非常吻合。此外,在低LET粒子入射的情况下,统计微剂量模型可以替代轨道结构仿真代码来重现光输出。

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