Laboratory three-dimensional X-ray micro-beam Laue diffraction.

IF 2.8 3区 材料科学 Q1 Biochemistry, Genetics and Molecular Biology
Journal of Applied Crystallography Pub Date : 2025-09-24 eCollection Date: 2025-10-01 DOI:10.1107/S1600576725007587
Yubin Zhang, Anthony Seret, Jette Oddershede, Azat Slyamov, Jan Kehres, Florian Bachmann, Carsten Gundlach, Ulrik Lund Olsen, Jacob Bowen, Henning Friis Poulsen, Erik Lauridsen, Dorte Juul Jensen
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引用次数: 0

Abstract

The development of 3D non-destructive X-ray characterization techniques in home laboratories is essential for enabling many more researchers to perform 3D characterization daily, overcoming the limitations imposed by competitive and scarce access to synchrotron facilities. Recent efforts have focused on techniques such as laboratory diffraction contrast tomography (LabDCT). LabDCT allows 3D characterization of recrystallized grains with sizes larger than 15-20 µm, offering a boundary resolution of approximately 5 µm using commercial X-ray computed tomography (CT) systems. To enhance the capa-bil-ities of laboratory instruments, we have developed a new laboratory-based 3D X-ray micro-beam diffraction (Lab-3DµXRD) technique. Lab-3DµXRD combines the use of a focused polychromatic beam with a scanning-tomographic data acquisition routine to enable depth-resolved crystallographic orientation characterization. This work presents the first realization of Lab-3DµXRD, including hardware development through the integration of a newly developed Pt-coated twin paraboloidal capillary X-ray focusing optics into a conventional X-ray micro-computed tomography (µCT) system, as well as the development of data acquisition and processing software. The results are validated through comparisons with LabDCT and synchrotron phase contrast tomography. The findings clearly demonstrate the feasibility of Lab-3DµXRD, particularly in detecting smaller grains and providing intragranular information. Finally, we discuss future directions for developing Lab-3DµXRD into a versatile tool for studying materials with smaller grain sizes and high defect densities, including the potential of combining it with LabDCT and µCT for multiscale and multimodal microstructural characterization.

实验室三维x射线微束劳厄衍射。
在家庭实验室中开发3D非破坏性x射线表征技术对于使更多的研究人员能够每天进行3D表征至关重要,克服了竞争和稀缺的同步加速器设施所带来的限制。最近的努力集中在实验室衍射对比断层扫描(LabDCT)等技术上。LabDCT允许尺寸大于15-20 μ m的再结晶晶粒的3D表征,使用商用x射线计算机断层扫描(CT)系统提供约5 μ m的边界分辨率。为了提高实验室仪器的能力,我们开发了一种新的基于实验室的3D x射线微束衍射(Lab-3DµXRD)技术。Lab-3DµXRD结合了聚焦多色光束和扫描层析数据采集程序,实现了深度分辨晶体取向表征。这项工作首次实现了Lab-3DµXRD,包括通过将新开发的pt涂层双抛物面毛细管x射线聚焦光学器件集成到传统的x射线微计算机断层扫描(µCT)系统中的硬件开发,以及数据采集和处理软件的开发。通过与LabDCT和同步加速器相衬断层扫描的比较,验证了结果。这些发现清楚地证明了Lab-3DµXRD的可行性,特别是在检测小颗粒和提供颗粒内信息方面。最后,我们讨论了将Lab-3DµXRD发展成为研究小晶粒尺寸和高缺陷密度材料的通用工具的未来方向,包括将其与LabDCT和µCT结合起来进行多尺度和多模态微观结构表征的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
10.00
自引率
3.30%
发文量
178
审稿时长
4.7 months
期刊介绍: Many research topics in condensed matter research, materials science and the life sciences make use of crystallographic methods to study crystalline and non-crystalline matter with neutrons, X-rays and electrons. Articles published in the Journal of Applied Crystallography focus on these methods and their use in identifying structural and diffusion-controlled phase transformations, structure-property relationships, structural changes of defects, interfaces and surfaces, etc. Developments of instrumentation and crystallographic apparatus, theory and interpretation, numerical analysis and other related subjects are also covered. The journal is the primary place where crystallographic computer program information is published.
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