Complexions-Dominated Plastic Transmission and Mechanical Response in Cu-Based Nanolayered Composites

IF 3.9 2区 材料科学 Q2 METALLURGY & METALLURGICAL ENGINEERING Acta Metallurgica Sinica-English Letters Pub Date : 2025-02-23 DOI:10.1007/s40195-025-01822-4
Zhe Yan, Qi An, Lichen Bai, Ruifeng Zhang, Mingyu Gong, Shijian Zheng
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Abstract

Thermodynamically stable and ultra-thin “phase” at the interface, known as complexions, can significantly improve the mechanical properties of nanolayered composites. However, the effect of complexions features (e.g., crystalline orientation, crystalline structure and amorphous composition) on the plastic deformation remains inadequately investigated, and the correlation with the plastic transmission and mechanical response has not been fully established. Here, using atomistic simulations, we elucidate the different complexions-dominated plastic transmission and mechanical response. Complexions can alter the preferred slip system of dislocation nucleation, depending on the Schmid factor and interface structure. After nucleation, the dislocation density exhibits an inverse correlation with the stress magnitude, because the number of dislocations influences the initiation of plastic deformation and determines the stress release. For crystalline complexions with different structures and orientations, the ability of dislocation transmission is mainly dependent on the continuity of the slip system. The plastic transmission can easily proceed and exhibits relatively low flow stress when the slip system is well-aligned. In the case of amorphous complexions with different compositions, compositional variations impact the atomic percentage of shear transformation zones after loading, resulting in different magnitudes of plastic deformation. When smaller plastic deformation is produced, less stress can be released contributing to higher flow stress. These findings reveal the role of the complexions on plasticity behavior and provide valuable insights for the design of nanolayered composites.

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配位主导的cu基纳米层复合材料的塑性传输和力学响应
界面处的热力学稳定和超薄“相”,即络合物,可以显著改善纳米层复合材料的机械性能。然而,络合物特征(如晶体取向、晶体结构和非晶成分)对塑性变形的影响仍未得到充分研究,其与塑性传递和力学响应的关系尚未完全建立。在这里,使用原子模拟,我们阐明了不同肤色主导的塑料传输和机械响应。络合可以改变位错成核的首选滑移体系,这取决于施密德因子和界面结构。在形核后,位错密度与应力大小呈负相关,这是因为位错的数量影响塑性变形的起始,并决定应力的释放。对于具有不同结构和取向的晶体配位,位错传递能力主要取决于滑移体系的连续性。当滑移系统对齐良好时,塑料传动可以很容易地进行,并表现出相对较低的流动应力。对于不同组成的非晶态络合物,其组成的变化会影响加载后剪切转变区的原子百分数,从而导致不同程度的塑性变形。塑性变形越小,释放的应力越小,流动应力越大。这些发现揭示了肤色对塑性行为的作用,并为纳米层复合材料的设计提供了有价值的见解。
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来源期刊
Acta Metallurgica Sinica-English Letters
Acta Metallurgica Sinica-English Letters METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
6.60
自引率
14.30%
发文量
122
审稿时长
2 months
期刊介绍: This international journal presents compact reports of significant, original and timely research reflecting progress in metallurgy, materials science and engineering, including materials physics, physical metallurgy, and process metallurgy.
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