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A Next-Generation Hard X-Ray Nanoprobe Beamline for In Situ Studies of Energy Materials and Devices

机译:用于能源材料和器件原位研究的下一代硬X射线纳米探针光束线

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摘要

The Advanced Photon Source is developing a suite of new X-ray beamlines to study materials and devices across many length scales and under real conditions. One of the flagship beamlines of the APS upgrade is the In Situ Nanoprobe (ISN) beamline, which will provide in situ and operando characterization of advanced energy materials and devices under varying temperatures, gas ambients, and applied fields, at previously unavailable spatial resolution and throughput. Examples of materials systems include inorganic and organic photovoltaic systems, advanced battery systems, fuel cell components, nanoelectronic devices, advanced building materials and other scientifically and technologically relevant systems. To characterize these systems at very high spatial resolution and trace sensitivity, the ISN will use both nanofocusing mirrors and diffractive optics to achieve spots sizes as small as 20 nm. Nanofocusing mirrors in Kirkpatrick–Baez geometry will provide several orders of magnitude increase in photon flux at a spatial resolution of 50 nm. Diffractive optics such as zone plates and/or multilayer Laue lenses will provide a highest spatial resolution of 20 nm. Coherent diffraction methods will be used to study even small specimen features with sub-10 nm relevant length scale. A high-throughput data acquisition system will be employed to significantly increase operations efficiency and usability of the instrument. The ISN will provide full spectroscopy capabilities to study the chemical state of most materials in the periodic table, and enable X-ray fluorescence tomography. Insitu electrical characterization will enable operando studies of energy and electronic devices such as photovoltaic systems and batteries. We describe the optical concept for the ISN beamline, the technical design, and the approach for enabling a broad variety of in situ studies. We furthermore discuss the application of hard X-ray microscopy to study defects in multi-crystalline solar cells, one of the lines of inquiries for which the ISN is being developed.
机译:先进的光子源正在开发一套新的X射线束线,以研究在许多长度范围内和在实际条件下的材料和设备。 APS升级的旗舰光束线之一是Insitu Nanoprobe(ISN)光束线,它将以变化的温度,气体环境和应用领域,以前无法获得的空间分辨率和动态范围提供先进能源材料和设备的原位和操作特性。吞吐量。材料系统的示例包括无机和有机光伏系统,高级电池系统,燃料电池组件,纳米电子设备,高级建筑材料以及其他与科学和技术相关的系统。为了以非常高的空间分辨率和迹线灵敏度表征这些系统,ISN将同时使用纳米聚焦镜和衍射光学器件以实现小至20 nm的光斑尺寸。 Kirkpatrick-Baez几何形状的纳米聚焦镜将以50 nm的空间分辨率将光子通量提高几个数量级。衍射光学器件(例如波带片和/或多层Laue透镜)将提供20 nm的最高空间分辨率。相干衍射方法将用于研究甚至小于10 nm相关长度尺度的小样本特征。将采用高通量数据采集系统来显着提高仪器的操作效率和可用性。 ISN将提供完整的光谱学功能,以研究元素周期表中大多数材料的化学状态,并实现X射线荧光层析成像。原位电学表征将使能源和电子设备(例如光伏系统和电池)的操作研究成为可能。我们描述了ISN光束线的光学概念,技术设计以及实现各种原位研究的方法。我们还将讨论硬X射线显微镜技术在研究多晶太阳能电池中的缺陷方面的应用,这是ISN正在为其开发的查询线之一。

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