NEXMAP, Department of Physics, Technical University of Denmark, Kgs. Lyngby, 2800, Denmark.
European Spallation Source ESS AB, Lund, 22592, Sweden.
Sci Rep. 2017 Aug 25;7(1):9561. doi: 10.1038/s41598-017-09717-w.
The physical properties of polycrystalline materials depend on their microstructure, which is the nano- to centimeter scale arrangement of phases and defects in their interior. Such microstructure depends on the shape, crystallographic phase and orientation, and interfacing of the grains constituting the material. This article presents a new non-destructive 3D technique to study centimeter-sized bulk samples with a spatial resolution of hundred micrometers: time-of-flight three-dimensional neutron diffraction (ToF 3DND). Compared to existing analogous X-ray diffraction techniques, ToF 3DND enables studies of samples that can be both larger in size and made of heavier elements. Moreover, ToF 3DND facilitates the use of complicated sample environments. The basic ToF 3DND setup, utilizing an imaging detector with high spatial and temporal resolution, can easily be implemented at a time-of-flight neutron beamline. The technique was developed and tested with data collected at the Materials and Life Science Experimental Facility of the Japan Proton Accelerator Complex (J-PARC) for an iron sample. We successfully reconstructed the shape of 108 grains and developed an indexing procedure. The reconstruction algorithms have been validated by reconstructing two stacked Co-Ni-Ga single crystals, and by comparison with a grain map obtained by post-mortem electron backscatter diffraction (EBSD).
多晶材料的物理性质取决于其微观结构,即其内部相和缺陷的纳米到厘米尺度排列。这种微观结构取决于构成材料的晶粒的形状、结晶相和取向以及界面。本文提出了一种新的非破坏性的 3D 技术,用于研究具有百微米空间分辨率的厘米级块状样品:飞行时间三维中子衍射(ToF 3DND)。与现有的类似 X 射线衍射技术相比,ToF 3DND 可以研究更大尺寸和更重元素的样品。此外,ToF 3DND 便于使用复杂的样品环境。基本的 ToF 3DND 装置,利用具有高空间和时间分辨率的成像探测器,可轻松在飞行时间中子束线上实现。该技术是在日本质子加速器研究机构(J-PARC)的材料与生命科学实验设施上使用铁样品进行开发和测试的。我们成功地重建了 108 个晶粒的形状并开发了一种索引程序。通过重建两个堆叠的 Co-Ni-Ga 单晶和与通过事后电子背散射衍射(EBSD)获得的晶粒图进行比较,验证了重建算法。