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Interface-dependent nanoscale friction of copper bicrystals: tilt versus twist

机译:接口依赖型纳米级摩擦摩擦:倾斜与扭曲

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摘要

Interfaces with different structural units have a strong impact on their microscopic deformation behavior and correlated macroscopic mechanical response. In current study, we elucidate the underlying nanoscale friction mechanisms of Cu bicrystals by means of molecular dynamics simulations. Four grain boundaries, i.e., pure tilt and twist with two misorientation angles of 7.63 degrees and 67.38 degrees, are considered to address the grain boundary structure dependence of the friction. While the small-and high-angle tilt grain boundaries are respectively composed of parallel edge dislocation dipoles and edge dislocations of like sign, the small-and high-angle twist ones respectively incorporate two sets of intersecting screw dislocations and a planar defect. Simulation results demonstrate that the grain boundary resistance to dislocation motion and absorption, as well as the grain boundary evolution, are significantly varied with grain boundary structural units. It is found that splitting, annihilation and generation of grain boundary dislocations are the three competing decomposition mechanisms of the well-defined grain boundaries. The anisotropic dislocation-grain boundary interactions in turn results in a strong grain boundary structure dependence of the frictional response for scratching in the vicinity of grain boundaries. These findings will not only advance our understanding of the interface-dependent nanoscale friction behavior of metals, but also provide rational design guidelines for the synthesis of advanced functional nanostructured materials with unique internal interface textures.
机译:具有不同的结构单元的接口在他们的微观变形行为和相关宏观力学响应的强烈冲击。在当前的研究中,我们通过分子动力学模拟来阐明的Cu双晶的基本纳米级摩擦机构。四个晶粒边界,即,纯倾斜和扭曲与7.63度和67.38度的角度取向差,被认为,以解决摩擦的晶界结构的依赖。而小和大角度倾斜晶界分别由平行刃型位错和偶极子的样征刃型位错的,小和高角度捻那些分别合并两组相交的螺旋位错和平面缺陷的。仿真结果表明,对位错运动和吸收,以及晶界进化晶界电阻,被显著与晶界结构单元变化。研究发现晶界位错的是分裂,毁灭和生成是明确定义的晶界的三个竞争机制分解。各向异性错位粒又导致边界相互作用在用于晶界附近刮伤摩擦响应的强晶界结构的依赖。这些发现不仅将推进我们金属的界面相关的纳米摩擦性能的了解,同时也提供了与独特的内部接口的纹理先进的功能纳米材料合成的合理的设计准则。

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  • 来源
    《RSC Advances 》 |2016年第64期| 共12页
  • 作者单位

    Harbin Inst Technol Ctr Precis Engn Harbin 150001 Peoples R China;

    Harbin Inst Technol Ctr Precis Engn Harbin 150001 Peoples R China;

    Harbin Inst Technol Ctr Precis Engn Harbin 150001 Peoples R China;

    Harbin Inst Technol Ctr Precis Engn Harbin 150001 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学 ;
  • 关键词

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