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Development of a parallel-plate avalanche counter with optical readout (O-PPAC)

机译:用光学读数(O-PPAC)的平行板雪崩计数器的开发

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we describe a novel gaseous detector concept for heavy-ion tracking and imaging: the Optical Parallel-Plate Avalanche Counter (O-PPAC). The detector consists of two thin parallelplate electrodes separated by a small (typically 3 mm) gap filled with low-pressure scintillating gas (i.e. CF_4). The localization of the impinging particles is achieved by recording the secondary scintillation, created during the avalanche processes within the gas gap, by a dedicated positionsensitive optical readout. The latter may comprise arrays of collimated photo-sensors (e.g. SiPMs) that surround the PPAC effective area. We present a systematic Monte Carlo simulation study used to optimize the geometry of the OPPAC components, including SiPMs effective area, collimator dimensions, and operational conditions. It was found that the optimal design for a 10 ×10 cm~2 OPPAC detector comprises four arrays, each of them counting a total of 15-20 individual photosensors. This configuration provides a localization capability with a resolution below 1mm and good response uniformity. An experimental investigation successfully demonstrated the proof of principle of an O-PPAC prototype equipped with a single array of 10 photo-sensors, with a pitch of 6 mm. The performance of the prototype was investigated with an LED light, under 10;12C beam irradiation, and with a low-intensity 241-Am alpha-particle source. The experimental data obtained with the prototype is compared to the results obtained by systematic Monte Carlo simulations.
机译:我们描述了一种用于重离子跟踪和成像的新型气态探测器概念:光学平行板雪崩计数器(O-PPAC)。检测器由两个薄的平行电极由填充有低压闪烁气体(即CF_4)的小(通常为3mm)间隙分开。通过专用位置密度光学读出通过记录在气隙内的雪崩过程中产生的次要闪烁来实现撞击粒子的定位。后者可包括围绕PPAC有效区域的准直的光传感器(例如SIPMS)的阵列。我们提出了一种系统的蒙特卡罗模拟研究,用于优化OPPAC部件的几何形状,包括SIPMS有效面积,准直尺寸和操作条件。结果发现,10×10cm〜2的OPPAC检测器的最佳设计包括四个阵列,每个阵列中的每一个总共计数15-20个单独的光电传感器。该配置提供了定位能力,分辨率低于1mm,良好的响应均匀性。实验调查成功证明了配备有单个10个照片传感器阵列的O-PPAC原型原理的证据,距6毫米。用LED光,10℃下的LED光进行研究了原型的性能,并且具有低强度241-AMα-粒子源。将用原型获得的实验数据与系统蒙特卡罗模拟获得的结果进行比较。

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