Huang Juanjuan, Tornheim Adam P, Shi Xianbo, Wolfman Mark, Chen Yanna, Heald Steve M, Kelly Shelly D, Sterbinsky George E
X-ray Science Division, Argonne National Laboratory, Lemont, IL 60439, USA.
Chemical Sciences and Engineering Division, Argonne National Laboratory, Lemont, IL 60439, USA.
J Synchrotron Radiat. 2025 Jul 1;32(Pt 4):1068-1084. doi: 10.1107/S1600577525004953. Epub 2025 Jun 30.
We present a modular instrument for dispersive X-ray absorption spectroscopy (DXAS) developed for the Advanced Spectroscopy Beamline at Sector 25 of the Advanced Photon Source. The setup employs a double-multilayer monochromator to provide X-rays with a broad energy bandwidth, Kirkpatrick-Baez mirrors for focusing, a convexly bent Bragg-crystal polychromator for energy dispersion, and a pixel-array detector to resolve all X-ray energies and collect their intensity simultaneously, thereby enabling acquisition of a full X-ray absorption spectrum in a single shot. The use of separate optics for X-ray focusing and energy dispersion provides high spatial resolution and avoids chromatic aberrations inherent in focusing bent-crystal optics, and a modular design makes implementation of the technique at other beamlines possible without requiring modifications to the upstream beamline configurations. Theoretical calculations are performed to determine optimal instrument operating parameters and demonstrate that an energy resolution better than the K-edge core-hole lifetime broadening can be maintained while providing a sufficient bandwidth for X-ray absorption near-edge structure spectroscopy through the full operating range of 5-11 keV. Additionally, instrument design, data analysis methods, and initial DXAS results on lithium-manganese-nickel oxide laminates are presented.
我们展示了一种为先进光子源25号扇区的先进光谱光束线开发的用于色散X射线吸收光谱(DXAS)的模块化仪器。该装置采用双多层单色仪提供具有宽能量带宽的X射线,使用柯克帕特里克-贝兹镜进行聚焦,采用凸弯布拉格晶体多色仪进行能量色散,并使用像素阵列探测器来分辨所有X射线能量并同时收集其强度,从而能够在单次测量中获取完整的X射线吸收光谱。使用单独的光学元件进行X射线聚焦和能量色散可提供高空间分辨率,并避免了聚焦弯曲晶体光学元件中固有的色差,模块化设计使得该技术在其他光束线上的实施成为可能,而无需对上游光束线配置进行修改。进行了理论计算以确定最佳仪器操作参数,并证明在5 - 11 keV的整个操作范围内,在为X射线吸收近边结构光谱提供足够带宽的同时,可以保持优于K边芯孔寿命展宽的能量分辨率。此外,还介绍了仪器设计、数据分析方法以及锂锰镍氧化物层压板的初始DXAS结果。