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A Compton Imaging Device for Radioactive Material Detection

机译:用于放射性物质检测的康普顿成像装置

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The most serious terrorist threat we face today may come from radiological dispersion devices and unsecured nuclear weapons. It is imperative for national security that we develop and implement radiation detection technology capable of locating and tracking nuclear material moving across and within our borders. Many radionuclides emit gamma rays in the 0.2 - 3 MeV range. Unfortunately, current gamma ray detection technology is inadequate for providing precise and efficient measurements of localized radioactive sources. Common detectors available today suffer from large background rates and have only minimal ability to localize the position of the source without the use of mechanical collimators, which reduces efficiency. Imaging detectors using the Compton scattering process have the potential to provide greatly improved sensitivity through their ability to reject off-source background. We are developing a prototype device to demonstrate the Compton imaging technology. The detector consists of several layers of pixelated silicon detectors followed by an array of CsI crystals coupled to photodiodes. Here we present the concept of our detector design and results from Monte Carlo simulations of our prototype detector.
机译:我们今天面临的最严重的恐怖主义威胁可能来自放射散布设备和不安全的核武器。为了国家安全,我们必须开发和实施能够定位和跟踪在边界内和边界内移动的核材料的辐射检测技术。许多放射性核素会发出0.2-3 MeV范围内的伽马射线。不幸的是,当前的伽马射线检测技术不足以提供精确和有效的局部放射性源测量。当今可用的普通检测器遭受大背景辐射,并且在不使用机械准直器的情况下,定位源位置的能力只有很小的能力,这降低了效率。使用康普顿散射工艺的成像检测器具有拒绝源本底的能力,可以大大提高灵敏度。我们正在开发一种原型设备,以演示康普顿成像技术。该探测器由几层像素化硅探测器组成,随后是耦合到光电二极管的CsI晶体阵列。在这里,我们介绍了探测器设计的概念以及原型探测器的蒙特卡洛模拟结果。

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