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Effects of cross-sectional area and aspect ratio coupled with orientation on mechanical properties and deformation behavior of Cu nanowires

机译:截面积和长径比耦合取向对Cu纳米线力学性能和变形行为的影响

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摘要

Metal nanomaterials exhibit excellent mechanical properties compared with corresponding bulk materials and have potential applications in various areas. Despite a number of studies of the size effect on Cu nanowires mechanical properties with square cross-sectional, investigations of them in rectangular cross-sectional with various sizes at constant volume are rare, and lack of multifactor coupling effect on mechanical properties and quantitative investigation. In this work, the dependence of mechanical properties and deformation mechanisms of Cu nanowires/nanoplates under tension on cross-sessional area, aspect ratio of cross-sectional coupled with orientation were investigated using molecular dynamics simulations and the semi-empirical expressions related to mechanical properties were proposed. The simulation results show that the Young's modulus and the yield stress sharply increase with the aspect ratio except for the 110{110}{001} Cu nanowires/nanoplates at the same cross-sectional area. And the Young's modulus increases while the yield stress decreases with the cross-sectional area of Cu nanowires. However, both of them increase with the cross-sectional area of Cu nanoplates. Besides, the Young's modulus increases with the cross-sectional area at all the orientations. The yield stress shows a mildly downward trend except for the 111 Cu nanowires with increased cross-sectional area. For the Cu nanowires with a small cross-sectional area, the surface force increases with the aspect ratio. In contrast, it decreases with the aspect ratio increase at a large cross-sectional area. At the cross-sectional area of 13.068 nm(2), the surface force decreases with the aspect ratio of the 110 Cu nanowires while it increases at other orientations. The surface force is a linearly decreasing function of the cross-sectional area at different orientations. Quantitative studies show that Young's modulus and yield stress to the aspect ratio of the Cu nanowires satisfy exponent relationship. In addition, the main deformation mechanism of Cu nanowires is the nucleation and propagation of partial dislocations while it is the twinning-dominated reorientation for Cu nanoplates.
机译:与相应的块状材料相比,金属纳米材料表现出优异的力学性能,在各个领域都有潜在的应用前景。尽管对方形截面Cu纳米线的尺寸影响进行了大量研究,但在等体积下对不同尺寸的矩形截面的研究很少,并且缺乏对力学性能和定量研究的多因素耦合效应。本文采用分子动力学模拟方法研究了Cu纳米线/纳米板在张力作用下力学性能和变形机理对截面面积、横截面长宽比和取向的依赖性,并提出了与力学性能相关的半经验表达式。模拟结果表明,除110{110}{001}Cu纳米线/纳米片外,杨氏模量和屈服应力均随长径比的增加而急剧增加。杨氏模量随Cu纳米线截面积的增加而增大,而屈服应力减小。然而,它们都随着Cu纳米片的横截面积而增加。此外,杨氏模量在所有方向上都随着横截面积的增加而增加。除截面积增大的111 Cu纳米线外,屈服应力呈温和下降趋势。对于截面积较小的Cu纳米线,表面力随长径比的增加而增大。相反,在较大的横截面积上,它随着纵横比的增加而降低。在截面积为13.068 nm(2)时,表面力随110 Cu纳米线长径比的增加而增大。表面力是横截面积在不同方向上的线性递减函数。定量研究表明,Cu纳米线的杨氏模量和屈服应力与长径比的关系满足指数关系。此外,Cu纳米线的主要变形机制是部分位错的成核和扩展,而Cu纳米片则是孪晶主导的重新取向。

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