Yuan Chen, Siwei Ren, Xiubo Liu, Jing Peng, Peter K. Liaw
{"title":"Uncovering Nanoindention Behavior of Amorphous/Crystalline High-Entropy-Alloy Composites","authors":"Yuan Chen, Siwei Ren, Xiubo Liu, Jing Peng, Peter K. Liaw","doi":"10.3390/ma17153689","DOIUrl":null,"url":null,"abstract":"Amorphous/crystalline high-entropy-alloy (HEA) composites show great promise as structural materials due to their exceptional mechanical properties. However, there is still a lack of understanding of the dynamic nanoindentation response of HEA composites at the atomic scale. Here, the mechanical behavior of amorphous/crystalline HEA composites under nanoindentation is investigated through a large-scale molecular dynamics simulation and a dislocation-based strength model, in terms of the indentation force, microstructural evolution, stress distribution, shear strain distribution, and surface topography. The results show that the uneven distribution of elements within the crystal leads to a strong heterogeneity of the surface tension during elastic deformation. The severe mismatch of the amorphous/crystalline interface combined with the rapid accumulation of elastic deformation energy causes a significant number of dislocation-based plastic deformation behaviors. The presence of surrounding dislocations inhibits the free slip of dislocations below the indenter, while the amorphous layer prevents the movement or disappearance of dislocations towards the substrate. A thin amorphous layer leads to great indentation force, and causes inconsistent stacking and movement patterns of surface atoms, resulting in local bulges and depressions at the macroscopic level. The increasing thickness of the amorphous layer hinders the extension of shear bands towards the lower part of the substrate. These findings shed light on the mechanical properties of amorphous/crystalline HEA composites and offer insights for the design of high-performance materials.","PeriodicalId":503043,"journal":{"name":"Materials","volume":"52 16","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-07-25","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Materials","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.3390/ma17153689","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
Amorphous/crystalline high-entropy-alloy (HEA) composites show great promise as structural materials due to their exceptional mechanical properties. However, there is still a lack of understanding of the dynamic nanoindentation response of HEA composites at the atomic scale. Here, the mechanical behavior of amorphous/crystalline HEA composites under nanoindentation is investigated through a large-scale molecular dynamics simulation and a dislocation-based strength model, in terms of the indentation force, microstructural evolution, stress distribution, shear strain distribution, and surface topography. The results show that the uneven distribution of elements within the crystal leads to a strong heterogeneity of the surface tension during elastic deformation. The severe mismatch of the amorphous/crystalline interface combined with the rapid accumulation of elastic deformation energy causes a significant number of dislocation-based plastic deformation behaviors. The presence of surrounding dislocations inhibits the free slip of dislocations below the indenter, while the amorphous layer prevents the movement or disappearance of dislocations towards the substrate. A thin amorphous layer leads to great indentation force, and causes inconsistent stacking and movement patterns of surface atoms, resulting in local bulges and depressions at the macroscopic level. The increasing thickness of the amorphous layer hinders the extension of shear bands towards the lower part of the substrate. These findings shed light on the mechanical properties of amorphous/crystalline HEA composites and offer insights for the design of high-performance materials.
非晶/晶态高熵合金(HEA)复合材料因其优异的机械性能而有望成为结构材料。然而,人们对 HEA 复合材料在原子尺度上的动态纳米压痕响应仍然缺乏了解。本文通过大规模分子动力学模拟和基于位错的强度模型,从压痕力、微结构演变、应力分布、剪切应变分布和表面形貌等方面研究了非晶/晶体 HEA 复合材料在纳米压痕作用下的力学行为。结果表明,晶体内元素的不均匀分布导致了弹性变形过程中表面张力的强烈异质性。非晶体/晶体界面的严重错配加上弹性变形能量的快速积累,导致了大量基于位错的塑性变形行为。周围位错的存在抑制了压头下方位错的自由滑移,而非晶层则阻止了位错向基底的移动或消失。较薄的非晶层会导致巨大的压痕力,并使表面原子的堆叠和运动模式不一致,从而在宏观上造成局部隆起和凹陷。非晶层厚度的增加阻碍了剪切带向基底下部的延伸。这些发现揭示了非晶/晶体 HEA 复合材料的机械性能,为高性能材料的设计提供了启示。