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通过低温热循环实现纳米玻璃的纳米结构演变和异常力学响应。

Nanoscale Structural Evolution and Anomalous Mechanical Response of Nanoglasses by Cryogenic Thermal Cycling.

机构信息

Centre for Advanced Structural Materials, Department of Mechanical and Biomechanical Engineering , City University of Hong Kong , Hong Kong , PR China.

Institute of Physics , Chinese Academy of Sciences , 100190 Beijing , PR China.

出版信息

Nano Lett. 2018 Jul 11;18(7):4188-4194. doi: 10.1021/acs.nanolett.8b01007. Epub 2018 Jun 5.

Abstract

One of the central themes in the amorphous materials research is to understand the nanoscale structural responses to mechanical and thermal agitations, the decoding of which is expected to provide new insights into the complex amorphous structural-property relationship. For common metallic glasses, their inherent atomic structural inhomogeneities can be rejuvenated and amplified by cryogenic thermal cycling, thus can be decoded from their responses to mechanical and thermal agitations. Here, we reported an anomalous mechanical response of a new kind of metallic glass (nanoglass) with nanoscale interface structures to cryogenic thermal cycling. As compared to those metallic glasses by liquid quenching, the ScFe (at. %) nanoglass exhibits a decrease in the Young's modulus but a significant increase in the yield strength after cryogenic cycling treatments. The abnormal mechanical property change can be attributed to the complex atomic rearrangements at the short- and medium- range orders due to the intrinsic nonuniformity of the nanoglass architecture. The present work gives a new route for designing high-performance metallic glassy materials by manipulating their atomic structures and helps for understanding the complex atomic structure-property relationship in amorphous materials.

摘要

非晶态材料研究的一个核心主题是理解纳米尺度结构对机械和热扰动的响应,对其进行解码有望为复杂的非晶态结构-性能关系提供新的见解。对于常见的金属玻璃,其固有的原子结构不均匀性可以通过低温热循环来恢复和放大,从而可以从它们对机械和热扰动的响应中进行解码。在这里,我们报道了一种新型具有纳米界面结构的金属玻璃(纳米玻璃)对低温热循环的异常力学响应。与通过液态淬火的那些金属玻璃相比,ScFe(原子百分比)纳米玻璃在经过低温循环处理后表现出杨氏模量降低但屈服强度显著增加。异常力学性能变化可归因于纳米玻璃结构固有不均匀性导致的短程和中程有序原子的复杂重排。本工作为通过操纵其原子结构设计高性能金属玻璃材料提供了新途径,并有助于理解非晶态材料中复杂的原子结构-性能关系。

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