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Single-channel beta-gamma coincidence detection of radioactive xenon using digital pulse shape analysis of phoswich detector signals

机译:使用磷光探测器信号的数字脉冲形状分析对放射性氙进行单通道β-γ重合检测

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摘要

Monitoring radioactive xenon in the atmosphere is one of several methods used to detect nuclear weapons testing. To increase sensitivity, monitoring stations use a complex system of separate beta and gamma detectors to detect beta-gamma coincidences from the Xe isotopes of interest, which is effective but requires such careful gain matching and calibration that it is difficult to operate in the field. To simplify the system, a phoswich detector has been designed, consisting of optically coupled plastic and CsI scintillators to absorb beta particles and gamma rays, respectively. Digital pulse shape analysis (PSA) of the detector signal is used to determine if radiation interacted in either or both parts of the detector and to measure the energy deposited in each part, thus using only a single channel of readout electronics to detect beta-gamma coincidences and to measure both energies. Experiments with a prototype detector show that the technique can clearly separate event types, does not degrade the energy resolution, and has an error rate for detecting coincidences of less than 0.1%. Monte Carlo simulations of radiation transport and light collection in the proposed detector were performed to obtain optimum values for its design parameters and an estimate of the coincidence detection efficiency (82%-92%) and the background rejection rate (better than 99%).
机译:监测大气中的放射性氙是用于检测核武器试验的几种方法之一。为了提高灵敏度,监测站使用复杂的系统将β和γ探测器分开,以从感兴趣的Xe同位素中检测出β-γ符合,这是有效的,但需要如此仔细的增益匹配和校准,以致于在现场难以操作。为了简化系统,设计了一种磷光探测器,该探测器由光学耦合的塑料闪烁体和CsI闪烁体组成,分别吸收β粒子和伽马射线。检测器信号的数字脉冲形状分析(PSA)用于确定辐射是否在检测器的一个或两个部分中相互作用,并测量沉积在每个部分中的能量,因此仅使用一个读出电子设备通道来检测β-伽马射线巧合,并测量两种能量。用原型检测器进行的实验表明,该技术可以清楚地分离事件类型,不会降低能量分辨率,并且用于检测巧合的错误率小于0.1%。对拟议的探测器进行了辐射传输和光收集的蒙特卡洛模拟,以获取其设计参数的最佳值,以及对重合探测效率(82%-92%)和背景抑制率(高于99%)的估计。

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