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数据驱动的电子衍射方法揭示了CrCoNi中的局部短程有序及其有序效应。

Data-driven electron-diffraction approach reveals local short-range ordering in CrCoNi with ordering effects.

作者信息

Hsiao Haw-Wen, Feng Rui, Ni Haoyang, An Ke, Poplawsky Jonathan D, Liaw Peter K, Zuo Jian-Min

机构信息

Department of Materials Science and Engineering, University of Illinois Urbana-Champaign, 1304W Green St, Urbana, IL, 61801, USA.

Fredrick Seitz Materials Research Laboratory, University of Illinois Urbana-Champaign, 104S Goodwin Ave, Urbana, IL, 61801, USA.

出版信息

Nat Commun. 2022 Nov 4;13(1):6651. doi: 10.1038/s41467-022-34335-0.

Abstract

The exceptional mechanical strength of medium/high-entropy alloys has been attributed to hardening in random solid solutions. Here, we evidence non-random chemical mixing in a CrCoNi alloy, resulting from short-range ordering. A data-mining approach of electron nanodiffraction enabled the study, which is assisted by neutron scattering, atom probe tomography, and diffraction simulation using first-principles theory models. Two samples, one homogenized and one heat-treated, are observed. In both samples, results reveal two types of short-range-order inside nanoclusters that minimize the Cr-Cr nearest neighbors (L1) or segregate Cr on alternating close-packed planes (L1). The L1 is predominant in the homogenized sample, while the L1 formation is promoted by heat-treatment, with the latter being accompanied by a dramatic change in dislocation-slip behavior. These findings uncover short-range order and the resulted chemical heterogeneities behind the mechanical strength in CrCoNi, providing general opportunities for atomistic-structure study in concentrated alloys for the design of strong and ductile materials.

摘要

中/高熵合金出色的机械强度归因于随机固溶体中的硬化现象。在此,我们证实了一种CrCoNi合金中存在由短程有序导致的非随机化学混合。一种电子纳米衍射的数据挖掘方法助力了这项研究,同时还有中子散射、原子探针断层扫描以及使用第一性原理理论模型的衍射模拟提供协助。我们观察了两个样品,一个是均匀化处理的,另一个是经过热处理的。在这两个样品中,结果都揭示了纳米团簇内部存在两种类型的短程有序,一种使Cr - Cr最近邻原子数最小化(L1),另一种是在交替的密排面上使Cr偏析(L1)。L1在均匀化样品中占主导,而热处理促进了L1的形成,后者伴随着位错滑移行为的显著变化。这些发现揭示了CrCoNi合金机械强度背后的短程有序以及由此产生的化学不均匀性,为在高浓度合金中进行原子结构研究以设计强韧性材料提供了普遍机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0958/9636235/8396f6204ade/41467_2022_34335_Fig1_HTML.jpg

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