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Development of a three-layer phoswich alpha-beta-gamma imaging detector

机译:三层磷光α-β-γ成像探测器的研制

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摘要

For radiation monitoring at the sites of such nuclear power plant accidents as Fukushima Daiichi, radiation detectors are needed not only for gamma photons but also for alpha and beta particles because some nuclear fission products emit beta particles and gamma photons and some nuclear fuels contain plutonium that emits alpha particles. In some applications, imaging detectors are required to detect the distribution of plutonium particles that emit alpha particles and radiocesium in foods that emits beta particles and gamma photons. To solve these requirements, we developed an imaging detector that can measure the distribution of alpha and beta particles as well as gamma photons. The imaging detector consists of three-layer scintillators optically coupled to each other and to a position sensitive photomultiplier tube (PSPMT). The first layer, which is made of a thin plastic scintillator (decay time: ~ 5 ns), detects alpha particles. The second layer, which is made of a thin Gd_2SiO_5 (GSO) scintillator with 1.5 mol% Ce (decay time: 35 ns), detects beta particles. The third layer made of a thin GSO scintillator with 0.4 mol% Ce (decay time: 70 ns) detects gamma photons. Using pulse shape discrimination, the images of these layers can be separated. The position information is calculated by the Anger principle from 8 × 8 anode signals from the PSPMT. The images for the alpha and beta particles and the gamma photons are individually formed by the pulse shape discriminations for each layer. We detected alpha particle images in the first layer and beta particle images in the second layer. Gamma photon images were detected in the second and third layers. The spatial resolution for the alpha and beta particles was ~ 1.25 mm FWHM and less than 2 mm FWHM for the gamma photons. We conclude that our developed alpha-beta-gamma imaging detector is promising for imaging applications not only for the environmental monitoring of radionuclides but also for medical and molecular imaging.
机译:对于福岛第一核电站这样的核电站事故现场的辐射监测,不仅需要伽马光子而且还需要α和β粒子的辐射探测器,因为某些核裂变产物会散发β粒子和伽马光子,而某些核燃料所含的that发出alpha粒子。在某些应用中,需要成像检测器来检测发出β粒子和γ光子的食品中发出α粒子的radio粒子和放射性铯的分布。为了解决这些要求,我们开发了一种成像检测器,可以测量α和β粒子以及伽马光子的分布。成像探测器由三层闪烁体组成,该三层闪烁体彼此光学耦合,并与位置敏感光电倍增管(PSPMT)光学耦合。第一层由薄的塑料闪烁体制成(衰减时间:约5 ns),用于检测α粒子。第二层由具有1.5 mol%Ce(衰减时间:35 ns)的薄Gd_2SiO_5(GSO)闪烁体制成,可检测β颗粒。由具有0.4 mol%Ce(衰减时间:70 ns)的薄GSO闪烁体制成的第三层检测伽马光子。使用脉冲形状识别,可以分离这些层的图像。位置信息是根据Anger原理从PSPMT的8×8阳极信号计算得出的。通过每层的脉冲形状识别分别形成α和β粒子以及伽马光子的图像。我们在第一层中检测到了alpha粒子图像,在第二层中检测到了β粒子图像。在第二和第三层中检测到伽玛光子图像。 α和β粒子的空间分辨率约为1.25 mm FWHM,而γ光子的空间分辨率小于2 mm FWHM。我们得出的结论是,我们开发的α-β-γ成像探测器不仅在放射性核素的环境监测中,而且在医学和分子成像中的成像应用,都具有广阔的前景。

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