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首页> 外文期刊>Scientific reports. >Customisable X-ray fluorescence photodetector with submicron sensitivity using a ring array of silicon p-i-n diodes
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Customisable X-ray fluorescence photodetector with submicron sensitivity using a ring array of silicon p-i-n diodes

机译:使用硅p-i-n二极管的环形阵列可定制的具有亚微米灵敏度的X射线荧光光电探测器

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The research and development of silicon-based X-ray fluorescence detectors achieved its submicron sensitivity. Its initial use is intended for in-situ beam monitoring at advanced light-source facilities. The effectively functioning prototype fully leveraged technologies and techniques from a wide array of scientific disciplines: X-ray fluorescence technique, photon scattering and spectroscopy, astronomical photometry, semiconductor physics, materials science, microelectronics, analytical and numerical modelling, and high-performance computing. At the design stage, the systematic two-track approach was taken with the aim of attaining its submicron sensitivity: Firstly, the novel parametric method, devised for system-wide full optimisation, led to a considerable increase in detector’s total solid angle (0.9 steradian), or integrated field-of-view (~3000 deg2), thus, in turn, yielding a substantial enhancement of its photon-detection efficiency. Secondly, the minimisation of all types of limiting noise sources identified resulted in a boost to detector’s signal-to-noise ratio, thereby achieving its targeted range of sensitivity. The subsequent synchrotron-radiation experiment with this X-ray detector demonstrated its capability to respond to 8-keV photon beams with 600-nanometre sensitivity. This Article reports on the innovative and effective design methods, formulated for systematising the process of custom-building ultrasensitive photodetectors, and future directions.
机译:硅基X射线荧光检测器的研究与开发实现了其亚微米灵敏度。它的最初用途是用于高级光源设备的现场光束监控。有效运行的原型充分利用了来自以下科学领域的技术:X射线荧光技术,光子散射和光谱学,天文光度法,半导体物理学,材料科学,微电子学,分析和数值建模以及高性能计算。在设计阶段,为了达到亚微米灵敏度,采取了系统的两轨方法:首先,为系统范围内的全优化设计的新颖参数方法导致探测器的总立体角(0.9立体弧度)显着增加。 )或集成视野(〜3000 deg2),从而大大提高了其光子检测效率。其次,将所有类型的限制噪声源最小化可以提高检测器的信噪比,从而达到其目标灵敏度范围。随后使用该X射线探测器进行的同步辐射实验证明了其能够以600纳米的灵敏度响应8-keV光子束。本文报告了创新和有效的设计方法,这些方法旨在将定制超敏感光电探测器的过程系统化,并指出未来的方向。

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