Exploiting Friedel pairs to interpret scanning 3DXRD data from complex geological materials.

IF 6.1 3区 材料科学 Q1 Biochemistry, Genetics and Molecular Biology Journal of Applied Crystallography Pub Date : 2024-11-08 eCollection Date: 2024-12-01 DOI:10.1107/S1600576724009634
Jean-Baptiste Jacob, Jonathan Wright, Benoît Cordonnier, François Renard
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Abstract

The present study introduces a processing strategy for synchrotron scanning 3D X-ray diffraction (s3DXRD) data, aimed at addressing the challenges posed by large, highly deformed, polyphase materials such as crystalline rocks. Leveraging symmetric Bragg reflections known as Friedel pairs, our method enables diffraction events to be precisely located within the sample volume. This method allows for fitting the phase, crystal structure and unit-cell parameters at the intra-grain scale on a voxel grid. The processing workflow incorporates several new modules, designed to (i) efficiently match Friedel pairs in large s3DXRD datasets containing up to 108 diffraction peaks; (ii) assign phases to each pixel or voxel, resolving potential ambiguities arising from overlap in scattering angles between different crystallographic phases; and (iii) fit the crystal orientation and unit cell locally on a point-by-point basis. We demonstrate the effectiveness of our technique on fractured granite samples, highlighting the ability of the method to characterize complex geological materials and show their internal structure and mineral composition. Additionally, we include the characterization of a metal gasket made of a commercial aluminium alloy, which surrounded the granite sample during experiments. The results show the effectiveness of the technique in recovering information about the internal texture and residual strain of materials that have undergone high levels of plastic deformation.

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利用Friedel对解释复杂地质材料的扫描3DXRD数据。
本研究介绍了一种同步加速器扫描3D x射线衍射(s3DXRD)数据的处理策略,旨在解决大型、高变形、多相材料(如结晶岩石)带来的挑战。利用对称布拉格反射被称为弗里德尔对,我们的方法使衍射事件精确定位在样品体积内。该方法允许在体素网格上拟合颗粒内尺度上的相位、晶体结构和单元参数。处理工作流程包含几个新的模块,旨在(i)在包含多达108个衍射峰的大型s3DXRD数据集中有效匹配Friedel对;(ii)为每个像素或体素分配相位,解决因不同晶体相之间散射角重叠而产生的潜在歧义;(iii)在逐点的基础上局部拟合晶体取向和单元胞。我们证明了我们的技术在破碎花岗岩样品上的有效性,突出了该方法表征复杂地质材料并显示其内部结构和矿物组成的能力。此外,我们还包括由商业铝合金制成的金属垫片的表征,该垫片在实验期间包围了花岗岩样品。结果表明,该技术在恢复高塑性变形材料的内部织构和残余应变信息方面是有效的。
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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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