首页> 外文会议>Conference on hard x-ray, gamma-ray, and neutron detector physics XIII >Silicon Photomultipliers detectors for next generation high-energy space telescopes
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Silicon Photomultipliers detectors for next generation high-energy space telescopes

机译:下一代高能太空望远镜的硅光电倍增管探测器

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摘要

Photon detection is a central element of any high-energy astronomy instrumentation. One classical setup that has proven successful in many missions is the combination of photomultiplier tubes (PMTs) with scintillators, converting incoming high-energy photons into visible light, which in turn is converted in an electrical impulse. Although being extremely sensitive and rapid, PMTs have the drawback of being bulky, fragile, and require a high-voltage power supply of up to several thousand volts. Recent technological advances in the development of silicon photomultipliers (SiPM) make them a promising alternative to PMTs in essentially all their applications. We have started a R&D program to assess the possibility of using SiPMs for space-based applications in the domain of high-energy astronomy. We will present results of our characterization studies of SiPMs from 3 manufacturers. Each SiPM detector has been tested inside a dedicated vacuum chamber and at low temperature to assess its performance in a representative space environment. Irradiation tests are scheduled to understand the susceptibility of SiPM to radiation damage. After comparison, we will select a baseline detector and design a specific front-end electronics and mechanical system. Furthermore, we plan to develop a low noise voltage power supply that ensures the stability of the SiPMs and to study their coupling to scintillators. Finally, our ultimate goal is to qualify the system for a space Technical Readiness Level of 5.
机译:光子检测是任何高能天文学仪器的核心要素。一种已在许多任务中证明是成功的经典装置是将光电倍增管(PMT)与闪烁体组合使用,将入射的高能光子转换为可见光,然后将其转换为电脉冲。尽管PMT非常灵敏和快速,但它的缺点是体积大,易碎,并且需要高达几千伏的高压电源。硅光电倍增管(SiPM)开发中的最新技术进步使它们在基本上所有的应用中都成为PMT的有希望的替代品。我们已经启动了一项研发计划,以评估在高能天文学领域将SiPM用于天基应用的可能性。我们将介绍来自3个制造商的SiPM表征研究的结果。每个SiPM检测器均已在专用真空室内进行了低温测试,以评估其在有代表性的太空环境中的性能。计划进行辐射测试以了解SiPM对辐射损伤的敏感性。经过比较,我们将选择一个基线检测器并设计一个特定的前端电子和机械系统。此外,我们计划开发一种低噪声电压电源,以确保SiPM的稳定性,并研究其与闪烁体的耦合。最后,我们的最终目标是使系统达到5级的技术准备水平。

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