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Strategies for full structure solution of intermetallic compounds using precession electron diffraction zonal data

机译:利用旋进电子衍射区域数据求金属间化合物全结构溶液的策略

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Owing to the individuality of intermetallic compounds, they are regarded as a special class of materials. As such, there is a need to develop a step-by-step methodology for solution of their structure. The current paper adapts the methodology of structure solution from precession electron diffraction (PED) zonal data for intermetallics. The optimization of PED parameters for structure determination was achieved through the development of the atomic model of a well known Mg_(17)Al_(12) (β) intermetallic phase. It was concluded that the PED acquisition parameters, the number of unique reflections and the quality of the merging process are the most important parameters that directly influence the correctness of a structure solution. The proposed methodology was applied to the structure solution of a highly complex new Mg_(48)Al_(36)Ag_(16) phase, which was recently revealed in the Mg-Al-Ag system. The final atomic model consisted of 152 atoms in the unit cell, distributed over 23 unique atomic positions. The correctness of the atomic model was verified by the reasonability of the interatomic distances and coordination polyhedra formed. It was found that the experimental model of Ф-Al_(17.1)Mg_(53.4)Zn_(29.5) can be assigned as a structure type for the Mg_(48)Al_(36)Ag_(16) phase. The Δ value, which measures the similarity between two structures, was calculated as 0.040.
机译:由于金属间化合物的独特性,它们被视为一类特殊的材料。因此,需要开发一种逐步方法来解决其结构。本文从金属间化合物的旋进电子衍射(PED)纬向数据中采用了结构求解的方法。通过开发众所周知的Mg_(17)Al_(12)(β)金属间相的原子模型,实现了用于结构确定的PED参数的优化。得出的结论是,PED采集参数,唯一反射的数量和合并过程的质量是直接影响结构解的正确性的最重要参数。拟议的方法应用于高度复杂的新Mg_(48)Al_(36)Ag_(16)相的结构解决方案,最近在Mg-Al-Ag系统中发现了这种相。最终的原子模型由晶胞中的152个原子组成,分布在23个唯一的原子位置上。通过原子间距离的合理性和形成的配位多面体,验证了原子模型的正确性。发现可以将Ф-Al_(17.1)Mg_(53.4)Zn_(29.5)的实验模型指定为Mg_(48)Al_(36)Ag_(16)相的结构类型。测量两个结构之间相似度的Δ值计算为0.040。

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