用于x射线光学波长测量的高空间分辨率探测器的研制

J. Vogel, H. Bhandari, J. Gaskin, S. Miller, V. Nagarkar, M. Pivovaroff, B. Ramsey, Bipin Singh
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引用次数: 1

摘要

x射线天文学领域的最新进展在很大程度上依赖于掠射x射线光学技术的创新,特别是对于能量高于10千电子伏特的硬x射线范围。这些用于当前和计划的天体物理和太阳成像任务的x射线望远镜的行为需要得到很好的理解,并且充分表征光学器件,包括测量点扩展函数和飞行光学有效面积作为能量和离轴位置的函数,以及了解基底涂层的散射和反射率特性。这需要独特的探测器具有大面积,非常高的空间分辨率,高灵敏度,光子计数能力和能量辨别能力。我们报告了一种探测器的发展,非常适合满足这些要求。该仪器的关键部件是一个高空间分辨率的电子倍增电荷耦合器件。该探测器被反向变薄,并通过光纤锥与专门制造的具有微柱结构的高分辨率、高亮度CsI:Tl闪烁体进行光学粘合。自2012年6月发射以来,该相机的原型版本被用于校准核光谱望远镜阵列(NuSTAR)任务的x射线聚焦光学系统,该任务成功地在太空中运行。在这里,我们介绍了我们最近在EMCCD探测器和闪烁体的设计,完整探测器系统的制造,组装和测试以及我们在单光子探测和能量识别方面的软件开发工作。还包括我们最近在美国宇航局马歇尔太空飞行中心的x射线杂散光校准设施进行的测量活动的第一批结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of a high spatial resolution detector for at-wavelength metrology of x-ray optics
Recent advancements in the field of x-ray astronomy have relied significantly on innovations in grazing-incidence x-ray optics technology, especially for the hard x-ray range for energies above 10 keV. The behavior of these x-ray telescopes for current and planned astrophysical and solar imaging missions needs to be well understood, and fully characterizing the optics includes measurements of the point spread function and effective area for flight optics as a function of energy and off-axis position as well as understanding the scattering and reflectivity properties of substrate coatings. This requires unique detectors with large areas, very high spatial resolution, high sensitivity, photon counting capability and energy discrimination. We report on the development of a detector that is well suited to meet these requirements. The key piece of the instrument is a high spatial-resolution, electron-multiplying charge-coupled device. The detector is back-thinned and optically bonded via a fiberoptic taper to a purpose-fabricated high resolution, high brightness CsI:Tl scintillator with a microcolumnar structure. A prototype version of this camera was used to calibrate the x-ray focusing optics for the Nuclear Spectroscopic Telescope Array (NuSTAR) mission successfully operating in space since its launch in June 2012. Here we present our recent work on the design of the EMCCD detector and scintillators, fabrication, assembly and testing of the full detector system as well as our software development efforts for single photon detection and energy discrimination. Also included are first results from our recent measurement campaign at the x-ray stray light calibration facility of NASA's Marshall Space Flight Center.
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