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一种适用于光束线和实验室科学的实用型超导微热量计X射线光谱仪。

A practical superconducting-microcalorimeter X-ray spectrometer for beamline and laboratory science.

作者信息

Doriese W B, Abbamonte P, Alpert B K, Bennett D A, Denison E V, Fang Y, Fischer D A, Fitzgerald C P, Fowler J W, Gard J D, Hays-Wehle J P, Hilton G C, Jaye C, McChesney J L, Miaja-Avila L, Morgan K M, Joe Y I, O'Neil G C, Reintsema C D, Rodolakis F, Schmidt D R, Tatsuno H, Uhlig J, Vale L R, Ullom J N, Swetz D S

机构信息

National Institute of Standards and Technology, Boulder, Colorado 80305, USA.

Department of Physics, University of Illinois, Urbana, Illinois 61801, USA.

出版信息

Rev Sci Instrum. 2017 May;88(5):053108. doi: 10.1063/1.4983316.

Abstract

We describe a series of microcalorimeter X-ray spectrometers designed for a broad suite of measurement applications. The chief advantage of this type of spectrometer is that it can be orders of magnitude more efficient at collecting X-rays than more traditional high-resolution spectrometers that rely on wavelength-dispersive techniques. This advantage is most useful in applications that are traditionally photon-starved and/or involve radiation-sensitive samples. Each energy-dispersive spectrometer is built around an array of several hundred transition-edge sensors (TESs). TESs are superconducting thin films that are biased into their superconducting-to-normal-metal transitions. The spectrometers share a common readout architecture and many design elements, such as a compact, 65 mK detector package, 8-column time-division-multiplexed superconducting quantum-interference device readout, and a liquid-cryogen-free cryogenic system that is a two-stage adiabatic-demagnetization refrigerator backed by a pulse-tube cryocooler. We have adapted this flexible architecture to mate to a variety of sample chambers and measurement systems that encompass a range of observing geometries. There are two different types of TES pixels employed. The first, designed for X-ray energies below 10 keV, has a best demonstrated energy resolution of 2.1 eV (full-width-at-half-maximum or FWHM) at 5.9 keV. The second, designed for X-ray energies below 2 keV, has a best demonstrated resolution of 1.0 eV (FWHM) at 500 eV. Our team has now deployed seven of these X-ray spectrometers to a variety of light sources, accelerator facilities, and laboratory-scale experiments; these seven spectrometers have already performed measurements related to their applications. Another five of these spectrometers will come online in the near future. We have applied our TES spectrometers to the following measurement applications: synchrotron-based absorption and emission spectroscopy and energy-resolved scattering; accelerator-based spectroscopy of hadronic atoms and particle-induced-emission spectroscopy; laboratory-based time-resolved absorption and emission spectroscopy with a tabletop, broadband source; and laboratory-based metrology of X-ray-emission lines. Here, we discuss the design, construction, and operation of our TES spectrometers and show first-light measurements from the various systems. Finally, because X-ray-TES technology continues to mature, we discuss improvements to array size, energy resolution, and counting speed that we anticipate in our next generation of TES-X-ray spectrometers and beyond.

摘要

我们描述了一系列为广泛的测量应用而设计的微量热计X射线光谱仪。这类光谱仪的主要优点是,与依赖波长色散技术的传统高分辨率光谱仪相比,它在收集X射线方面的效率可能要高出几个数量级。这一优势在传统上光子匮乏和/或涉及辐射敏感样品的应用中最为有用。每台能量色散光谱仪都围绕着由数百个过渡边缘传感器(TES)组成的阵列构建。TES是超导薄膜,被偏置到从超导到正常金属的转变状态。这些光谱仪共享一个通用的读出架构和许多设计元素,比如一个紧凑的、65 mK探测器组件、8列时分复用超导量子干涉器件读出装置,以及一个无液氦低温系统,该系统是由脉冲管制冷机支持的两级绝热去磁制冷机。我们已对这种灵活的架构进行了调整,使其能与涵盖一系列观测几何结构的各种样品室和测量系统相匹配。使用了两种不同类型的TES像素。第一种是为10 keV以下的X射线能量设计的,在5.9 keV时最佳能量分辨率为2.1 eV(半高宽或FWHM)。第二种是为2 keV以下的X射线能量设计的,在500 eV时最佳分辨率为1.0 eV(FWHM)。我们的团队现已将其中七台这种X射线光谱仪部署到各种光源、加速器设施和实验室规模的实验中;这七台光谱仪已经进行了与其应用相关的测量。另外五台这种光谱仪将在不久的将来投入使用。我们已将我们的TES光谱仪应用于以下测量应用:基于同步加速器的吸收和发射光谱以及能量分辨散射;基于加速器的强子原子光谱和粒子诱导发射光谱;基于实验室的桌面宽带源时间分辨吸收和发射光谱;以及基于实验室的X射线发射线计量。在此,我们讨论我们的TES光谱仪的设计、构建和操作,并展示来自各种系统的首次测量结果。最后,由于X射线-TES技术不断成熟,我们讨论了我们预计在下一代TES-X射线光谱仪及以后的产品中对阵列尺寸、能量分辨率和计数速度的改进。

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