Author Affiliations
Abstract
1 Center for High Pressure Science and Technology Advanced Research, Beijing 100094, China
2 High Pressure Collaborative Access Team, Geophysical Laboratory, Carnegie Institution of Washington, Argonne, Illinois 60439, USA
3 Center for the Study of Matter at Extreme Conditions and Department of Mechanical and Materials Engineering, Florida International University, Miami, Florida 33199, USA
4 Advanced Photon Source, Argonne National Laboratory, Lemont, Illinois 60439, USA
5 HPCAT, X-Ray Science Division, Argonne National Laboratory, Lemont, Illinois 60439, USA
6 MAX IV Laboratory, Lund University, 22100 Lund, Sweden
7 Condensed Matter Theory Group, Materials Theory Division, Department of Physics and Astronomy, Uppsala University, Uppsala S-75120, Sweden
8 Center for Advanced Radiation Sources, University of Chicago, Chicago, Illinois 60637, USA
9 Department of Engineering Sciences and Mathematics, Luleå University of Technology, 97187 Luleå, Sweden
Diamond anvil cell techniques have been improved to allow access to the multimegabar ultrahigh-pressure region for exploring novel phenomena in condensed matter. However, the only way to determine crystal structures of materials above 100 GPa, namely, X-ray diffraction (XRD), especially for low Z materials, remains nontrivial in the ultrahigh-pressure region, even with the availability of brilliant synchrotron X-ray sources. In this work, we perform a systematic study, choosing hydrogen (the lowest X-ray scatterer) as the subject, to understand how to better perform XRD measurements of low Z materials at multimegabar pressures. The techniques that we have developed have been proved to be effective in measuring the crystal structure of solid hydrogen up to 254 GPa at room temperature [C. Ji et al., Nature 573, 558–562 (2019)]. We present our discoveries and experiences with regard to several aspects of this work, namely, diamond anvil selection, sample configuration for ultrahigh-pressure XRD studies, XRD diagnostics for low Z materials, and related issues in data interpretation and pressure calibration. We believe that these methods can be readily extended to other low Z materials and can pave the way for studying the crystal structure of hydrogen at higher pressures, eventually testing structural models of metallic hydrogen.
Matter and Radiation at Extremes
2020, 5(3): 038401
作者单位
摘要
1 中国科学院上海光学精密机械研究所,强场激光物理国家重点实验室,上海 201800
2 高能物理所,北京 100080
利用模糊函数对部分相干源相X射线衬成像进行了详细的理论分析.列举了不同条件下的实验结果.通过与吸收成像相比较,相衬成像无疑对生物样品的内部结构有更高的对比度和可见度.
X射线 相衬成像 模糊函数 同步辐射 X ray Phase contrast imaging Ambiguity function Synchrotron radiation 
光子学报
2006, 35(6): 0886

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