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揭示金属玻璃剪切带区域的局部原子排列

Unveiling the Local Atomic Arrangements in the Shear Band Regions of Metallic Glass.

作者信息

Mu Xiaoke, Chellali Mohammed Reda, Boltynjuk Evgeniy, Gunderov Dmitry, Valiev Ruslan Z, Hahn Horst, Kübel Christian, Ivanisenko Yulia, Velasco Leonardo

机构信息

Institute of Nanotechnology, Karlsruhe Institute of Technology, Eggenstein-Leopoldshafen, 76344, Germany.

Saint Petersburg State University, St. Petersburg, 199034, Russia.

出版信息

Adv Mater. 2021 Mar;33(12):e2007267. doi: 10.1002/adma.202007267. Epub 2021 Feb 19.

Abstract

The prospective applications of metallic glasses are limited by their lack of ductility, attributed to shear banding inducing catastrophic failure. A concise depiction of the local atomic arrangement (local atomic packing and chemical short-range order), induced by shear banding, is quintessential to understand the deformation mechanism, however still not clear. An explicit view of the complex interplay of local atomic structure and chemical environment is presented by mapping the atomic arrangements in shear bands (SBs) and in their vicinity in a deformed Vitreloy 105 metallic glass, using the scanning electron diffraction pair distribution function and atom probe tomography. The results experimentally prove that plastic deformation causes a reduction of geometrically favored polyhedral motifs. Localized motifs variations and antisymmetric (bond and chemical) segregation extend for several hundred nanometers from the SB, forming the shear band affected zones. Moreover, the variations within the SB are found both perpendicular and parallel to the SB plane, also observable in the oxidation activity. The knowledge of the structural-chemical changes provides a deeper understanding of the plastic deformation of metallic glasses especially for their functional applications and future improvements.

摘要

金属玻璃的潜在应用受到其缺乏延展性的限制,这归因于剪切带导致的灾难性失效。对由剪切带引起的局部原子排列(局部原子堆积和化学短程有序)进行简洁描述,对于理解变形机制至关重要,但目前仍不清楚。通过使用扫描电子衍射对分布函数和原子探针断层扫描技术,绘制变形的Vitreloy 105金属玻璃中剪切带及其附近区域的原子排列,展现了局部原子结构与化学环境之间复杂相互作用的清晰视图。结果通过实验证明,塑性变形会导致几何上有利的多面体结构单元减少。局部结构单元变化和反对称(键合和化学)偏析从剪切带延伸数百纳米,形成剪切带影响区。此外,在剪切带内发现的变化既垂直于也平行于剪切带平面,在氧化活性中也可观察到。对结构 - 化学变化的了解为深入理解金属玻璃的塑性变形提供了帮助,特别是对于其功能应用和未来改进而言。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f23f/11468532/e60fad77dc8c/ADMA-33-2007267-g004.jpg

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