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The Advanced Scintillator Compton Telescope (ASCOT) balloon project

机译:先进的闪烁体康普顿望远镜(ASCOT)气球项目

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We describe a project to develop new medium-energy gamma-ray instrumentation by constructing and flying a balloon-borne Compton telescope using advanced scintillator materials combined with silicon photomultiplier readouts. There is a need in high-energy astronomy for a medium-energy gamma-ray mission covering the energy range from approximately 0.4 - 20 MeV to follow the success of the COMPTEL instrument on CGRO. We believe that directly building on the legacy of COMPTEL, using relatively robust, low-cost, off-the-shelf technologies, is the most promising path for such a mission. Fortunately, high-performance scintillators, such as Lanthanum Bromide (LaBr_3), Cerium Bromide (CeBr_3), and p-terphenyl, and compact readout devices, such as silicon photomultipliers (SiPMs), are already commercially available and capable of meeting this need. We have conducted two balloon flights of prototype instruments to test these technologies. The first, in 2011, demonstrated that a Compton telescope consisting of an liquid organic scintillator scattering layer and a LaBr_3 calorimeter effectively rejects background under balloon-flight conditions, using time-of-flight (ToF) discrimination. The second, in 2014, showed that a telescope using an organic stilbene crystal scattering element and a LaBr_3 calorimeter with SiPM readouts can achieve similar ToF performance. We are now constructing a much larger balloon instrument, an Advanced Scintillator Compton Telescope (ASCOT) with SiPM readout, with the goal of imaging the Crab Nebula at MeV energies in a one-day flight. We expect a ~4σ detection up to ~1 MeV in a single transit. We present calibration results of the first detector modules, and updated simulations of the balloon instrument sensitivity. If successful, this project will demonstrate that the energy, timing, and position resolution of this technology are sufficient to achieve an order of magnitude improvement in sensitivity in the medium-energy gamma-ray band, were it to be applied to a ~1 cubic meter instrument on a long-duration balloon or Explorer platform.
机译:我们描述了一个项目,该项目通过使用先进的闪烁体材料与硅光电倍增管读数相结合,构造并飞行气球式康普顿望远镜来开发新型中能伽马射线仪器。为了跟踪COMPRO仪器在CGRO上的成功应用,高能天文学需要一种涵盖约0.4-20 MeV能量范围的中能伽马射线任务。我们认为,使用相对可靠,低成本,现成的技术直接建立在COMPTEL的传统基础上,是实现这一使命的最有希望的途径。幸运的是,高性能闪烁体,例如溴化镧(LaBr_3),溴化铈(CeBr_3)和对三联苯,以及紧凑的读出设备(例如硅光电倍增管(SiPM))已经可以在市场上买到,并且能够满足这一需求。我们进行了两次原型仪器的热气球飞行,以测试这些技术。第一次是在2011年,它证明了由液体有机闪烁体散射层和LaBr_3量热仪组成的康普顿望远镜可以利用飞行时间(ToF)分辨力有效地拒绝气球飞行条件下的背景。 2014年的第二项研究表明,使用有机二苯乙烯晶体散射元件和带SiPM读数的LaBr_3量热仪的望远镜可以实现类似的ToF性能。我们现在正在建造一个更大的气球仪器,一种具有SiPM读数的先进闪烁体康普顿望远镜(ASCOT),目的是在一天的飞行中以MeV能量对蟹状星云进行成像。我们希望在一次运输中能检测到〜1 MeV的〜4σ。我们介绍了第一个检测器模块的校准结果,以及气球仪器灵敏度的更新模拟。如果成功,该项目将证明该技术的能量,时间和位置分辨率足以将中能量伽马射线波段的灵敏度提高一个数量级,如果将其应用于〜1立方长时间气球或Explorer平台上的仪表仪表。

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