A Computational High Throughput Search of Symmetric Tilt Grain Boundaries in Cerium Oxide

IF 8.3 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Susanna Vigorito, Joel M. Statham, Joshua S. Tse, Adam R. Symington, Tom L. Underwood, Graeme Watson, Günter Möbus, Stephen C. Parker, Lisa J. Gillie, David J. Cooke, Marco Molinari
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Abstract

Cerium dioxide is an important solid electrolyte in energy applications. Interfaces affect its properties, e.g. grain boundary blocking effect, and to begin engineering such properties, we need to control the stability of interfaces. Phenomenological models for interfaces may predict energy as a function of structural parameters, but we need more substantial quantitative results. Here, we apply high-throughput computing to provide a systematic atom level representation of the structures and energetics of grain boundaries for CeO2. This search is based on 160 symmetrically independent Coincidence Site Lattice (CSL) mirror-tilt grain boundaries arising from surfaces with Miller indices {hkl} where h, k, and l = 0-9. For each boundary, we perform a “scan” of all possible structures by searching the configurational space of the two adjoining surfaces, which provides a measure of the “configurational availability” of structures accessible via doping or thermal activation. We demonstrate that for known interfaces, structures have been experimentally observed. We elucidate the relationships amongst CSL parameters and formation and cleavage energies. There is a general rule that low formation energies are correlated to low Miller indices, and although largely true, we found also low formation energies for high Miller index {hkl} boundaries, even for the comparatively simple fluorite-structured CeO2. Within different classes of grain boundary, formation energies appear to follow the Bulatov-Reed-Kumar model, while cleavage energies do not. All grain boundary structures are presented to facilitate and assist experimental characterization. This computational approach is general and could be applied to any material and any grain boundary class.

Abstract Image

氧化铈中对称倾斜晶界的计算高通量搜索
二氧化铈是一种重要的能源固体电解质。界面会影响其性能,如晶界阻塞效应,要对其性能进行工程化,就需要控制界面的稳定性。界面的现象学模型可以预测能量作为结构参数的函数,但我们需要更多实质性的定量结果。在这里,我们应用高通量计算来提供CeO2晶界结构和能量学的系统原子水平表示。该搜索基于160个对称独立的重合点晶格(CSL)镜像倾斜晶界,这些晶界产生于Miller指数{hkl}的表面,其中h, k和l = 0-9。对于每个边界,我们通过搜索两个相邻表面的构型空间对所有可能的结构进行“扫描”,这提供了通过掺杂或热激活可获得结构的“构型可用性”的度量。我们证明,对于已知的界面,结构已经被实验观察到。我们阐明了CSL参数与形成和解理能之间的关系。一般来说,低地层能量与低米勒指数相关,尽管在很大程度上是正确的,但我们也发现,高米勒指数{hkl}边界的地层能量也很低,即使是相对简单的萤石结构的CeO2。在不同类型的晶界内,形成能似乎遵循Bulatov-Reed-Kumar模型,而解理能则不遵循。所有的晶界结构都是为了方便和辅助实验表征。这种计算方法具有通用性,可应用于任何材料和任何晶界类。
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来源期刊
Acta Materialia
Acta Materialia 工程技术-材料科学:综合
CiteScore
16.10
自引率
8.50%
发文量
801
审稿时长
53 days
期刊介绍: Acta Materialia serves as a platform for publishing full-length, original papers and commissioned overviews that contribute to a profound understanding of the correlation between the processing, structure, and properties of inorganic materials. The journal seeks papers with high impact potential or those that significantly propel the field forward. The scope includes the atomic and molecular arrangements, chemical and electronic structures, and microstructure of materials, focusing on their mechanical or functional behavior across all length scales, including nanostructures.
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