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布拉格相干X射线衍射成像的改进:电子背散射衍射对准与应变场计算

Refinements for Bragg coherent X-ray diffraction imaging: electron backscatter diffraction alignment and strain field computation.

作者信息

Yang David, Lapington Mark T, He Guanze, Song Kay, Zhang Minyi, Barker Clara, Harder Ross J, Cha Wonsuk, Liu Wenjun, Phillips Nicholas W, Hofmann Felix

机构信息

Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, UK.

Department of Materials, University of Oxford, Parks Road, Oxford OX1 3PH, UK.

出版信息

J Appl Crystallogr. 2022 Sep 6;55(Pt 5):1184-1195. doi: 10.1107/S1600576722007646. eCollection 2022 Oct 1.

Abstract

Bragg coherent X-ray diffraction imaging (BCDI) allows the 3D measurement of lattice strain along the scattering vector for specific microcrystals. If at least three linearly independent reflections are measured, the 3D variation of the full lattice strain tensor within the microcrystal can be recovered. However, this requires knowledge of the crystal orientation, which is typically attained via estimates based on crystal geometry or synchrotron microbeam Laue diffraction measurements. Presented here is an alternative method to determine the crystal orientation for BCDI measurements using electron backscatter diffraction (EBSD) to align Fe-Ni and Co-Fe alloy microcrystals on three different substrates. The orientation matrix is calculated from EBSD Euler angles and compared with the orientation determined using microbeam Laue diffraction. The average angular mismatch between the orientation matrices is less than ∼6°, which is reasonable for the search for Bragg reflections. The use of an orientation matrix derived from EBSD is demonstrated to align and measure five reflections for a single Fe-Ni microcrystal via multi-reflection BCDI. Using this data set, a refined strain field computation based on the gradient of the complex exponential of the phase is developed. This approach is shown to increase accuracy, especially in the presence of dislocations. The results demonstrate the feasibility of using EBSD to pre-align BCDI samples and the application of more efficient approaches to determine the full lattice strain tensor with greater accuracy.

摘要

布拉格相干X射线衍射成像(BCDI)能够对特定微晶沿散射矢量的晶格应变进行三维测量。如果测量至少三个线性独立的反射,就可以恢复微晶内全晶格应变张量的三维变化。然而,这需要晶体取向的信息,通常通过基于晶体几何形状的估计或同步加速器微束劳厄衍射测量来获得。本文介绍了一种用于BCDI测量的确定晶体取向的替代方法,即使用电子背散射衍射(EBSD)来对准三种不同衬底上的铁镍和钴铁合金微晶。取向矩阵由EBSD欧拉角计算得出,并与使用微束劳厄衍射确定的取向进行比较。取向矩阵之间的平均角度偏差小于约6°,这对于寻找布拉格反射来说是合理的。通过多反射BCDI,证明了使用从EBSD导出的取向矩阵来对准和测量单个铁镍微晶的五次反射。利用该数据集,开发了一种基于相位复指数梯度的精细应变场计算方法。结果表明,这种方法提高了精度,特别是在位错存在的情况下。结果证明了使用EBSD对BCDI样品进行预对准的可行性,以及应用更有效的方法来更准确地确定全晶格应变张量的可行性。

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