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Laboratory Three-dimensional X-ray Micro-beam Laue Diffraction

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arxiv 2504.07452 v1 pith:YROSQORS submitted 2025-04-10 cond-mat.mtrl-sci

classification cond-mat.mtrl-sci
keywords x-raycharacterizationlab-3ddevelopmentdiffractionlabdctlaboratorytomography
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

The development of three-dimensional (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), which allows 3D characterization of recrystallized grains with sizes larger than 15-20 $\mu$m, offering a boundary resolution of approximately 5$\mu$m using commercial X-ray computed tomography (CT) systems. To enhance the capabilities of laboratory instruments, we have developed a new laboratory-based 3D X-ray micro-beam diffraction (Lab-3D$\mu$XRD) technique. Lab-3D$\mu$XRD 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-3D$\mu$XRD, including hardware development through the integration of a newly developed Pt-coated twin paraboloidal capillary X-ray focusing optics into a conventional X-ray $\mu$CT 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-3D$\mu$XRD, particularly in detecting smaller grains and providing intragranular information. Finally, we discuss future directions for developing Lab-3D$\mu$XRD into a versatile tool for studying materials with smaller grain sizes and high defect densities, including the potential of combining it with LabDCT and $\mu$CT for multiscale and multimodal microstructural characterization.

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Cited by 1 Pith paper

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  1. Bridging Grain Mapping and Dark Field X-ray Microscopy for Multiscale Diffraction Imaging

    physics.app-ph 2025-08 unverdicted novelty 6.0 of 10

    A transferable open-source workflow links grain mapping and dark-field X-ray microscopy, enabling targeted, non-destructive imaging from millimeter polycrystal structure to dislocations in iron.

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