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Optimization studies of a Compton suppression spectrometer using experimentally validated Monte Carlo simulations

机译:使用经过实验验证的蒙特卡洛模拟对康普顿抑制谱仪的优化研究

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Recent developments associated with room temperature semiconductor detectors and inorganic scintillators suggest that these detectors may be viable alternatives for the primary detector in a Compton suppression spectrometer (CSS). The room temperature operation of these detectors allows removal of a substantial amount of material from between primary and secondary detectors, if properly designed and should afford substantially better suppression factors than can be achieved by germanium-based spectrometers. We have chosen to study the optimum properties of a CSS with a LaX_3:Ce scintillator (where X is chloride or bromide) as the primary gamma-ray detector. A Monte Carlo photon transport model is used to determine the optimum geometric properties of this spectrometer. To validate the assumptions and basic design of the Monte Carlo simulations, the energy distribution of a ~(137)Cs point source is measured and simulated for two experimental systems. Comparison of the suppression factors for the measured and simulated data validates the model accuracy. A range of CSS physical parameters are studied to determine optimal detector geometry and to maximize the Compton suppression factor. These physical parameters and their optimum values are discussed.
机译:与室温半导体探测器和无机闪烁体相关的最新进展表明,这些探测器可能是康普顿抑制谱仪(CSS)中主要探测器的可行替代品。如果设计合理,这些检测器在室温下的操作可以从主要检测器和辅助检测器之间除去大量材料,并且抑制因子应比锗光谱仪要好得多。我们选择使用LaX_3:Ce闪烁体(其中X为氯化物或溴化物)作为主要的伽马射线探测器来研究CSS的最佳性能。蒙特卡洛光子传输模型用于确定该光谱仪的最佳几何特性。为了验证蒙特卡洛模拟的假设和基本设计,对〜(137)Cs点源的能量分布进行了测量并针对两个实验系统进行了模拟。比较测量数据和模拟数据的抑制因子可以验证模型的准确性。研究了一系列CSS物理参数,以确定最佳的探测器几何形状并最大化了康普顿抑制因子。讨论了这些物理参数及其最佳值。

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