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Energy resolution experiments of conical organic scintillators and a comparison with Geant4 simulations

机译:锥形有机闪烁体的能量分辨实验及其与Geant4模拟的比较

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摘要

An increase in light-collection efficiency (LCE) improves the energy resolution of scintillator-based detection systems. An improvement in energy resolution can benefit detector performance, for example by lowering the measurement threshold and achieving greater accuracy in light-output calibration. This work shows that LCE can be increased by modifying the scintillator shape to reduce optical-photon reflections, thereby decreasing transmission and absorption likelihood at the reflector boundary. The energy resolution of four organic scintillators (EJ200) were compared: two cones and two right-circular cylinders, all with equal base diameter and height (50 mm). The sides of each shape had two surface conditions: one was polished and the other was ground. Each scintillator was coupled to the center of four photomultiplier tube (PMT) configurations of different diameters. The photocathode response of all PMTs was assessed as a function of position using a small cube (5 mm height) of EJ200. The worst configuration, a highly polished conical scintillator mated to a PMT of equal base diameter, produced a smeared energy spectrum. The cause of spectrum smearing is explored in detail. Results demonstrate that a ground cone had the greatest improvement in energy resolution over a ground cylinder by approximately 16.2% at 478 keVee, when using the largest diameter (127 mm) PMT. This result is attributed to the greater LCE of the cone, its ground surface, and the uniform photocathode response near center of the largest PMT. Optical-photon transport simulations in Geant4 of the cone and cylinder assuming a diffuse reflector and a uniform photocathode were compared to the best experimental configuration and agreed well. If a detector application requires excellent energy resolution above all other considerations, a ground cone on a large PMT is recommended over a cylinder.
机译:集光效率(LCE)的提高提高了基于闪烁体的检测系统的能量分辨率。能量分辨率的提高可以例如通过降低测量阈值并在光输出校准中实现更高的精度而使检测器性能受益。这项工作表明,可以通过修改闪烁体的形状来增加LCE,以减少光子的反射,从而降低反射器边界处的透射和吸收可能性。比较了四个有机闪烁体(EJ200)的能量分辨率:两个圆锥体和两个直角圆柱体,它们的底径和高度均相等(50毫米)。每种形状的侧面都有两个表面条件:一个被抛光,另一个被打磨。每个闪烁体都耦合到四个不同直径的光电倍增管(PMT)配置的中心。使用EJ200的小方块(5毫米高),将所有PMT的光电阴极响应评估为位置的函数。最差的配置是高度抛光的锥形闪烁体,与基本直径相等的PMT配合使用,产生了模糊的能谱。详细探讨了频谱拖尾的原因。结果表明,当使用最大直径(127毫米)的PMT时,在478 keVee时,圆锥体在能量分辨率上比接地圆柱体最大提高了约16.2%。该结果归因于圆锥的更大的LCE,圆锥的地面以及最大PMT中心附近均匀的光电阴极响应。假设扩散反射器和均匀的光电阴极在圆锥和圆柱体的Geant4中进行了光子传输模拟,并将其与最佳实验配置进行了比较,并且结果一致。如果检测器的应用要求除其他所有因素外都具有出色的能量分辨率,建议在圆柱体上使用大PMT上的接地锥。

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