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Reversible cyclic deformation mechanism of gold nanowires by twinning–detwinning transition evidenced from in situ TEM

机译:原位 TEM证实的孪生-孪生转变的金纳米线可逆循环变形机理

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Mechanical response of metal nanowires has recently attracted a lot of interest due to their ultra-high strengths and unique deformation behaviours. Atomistic simulations have predicted that face-centered cubic metal nanowires deform in different modes depending on the orientation between wire axis and loading direction. Here we report, by combination of in situ transmission electron microscopy and molecular dynamic simulation, the conditions under which particular deformation mechanisms take place during the uniaxial loading of [110]-oriented Au nanowires. Furthermore, by performing cyclic uniaxial loading, we show reversible plastic deformation by twinning and consecutive detwinning in tension and compression, respectively. Molecular dynamics simulations rationalize the observed behaviours in terms of the orientation-dependent resolved shear stress on the leading and trailing partial dislocations, their potential nucleation sites and energy barriers. This reversible twinning–detwinning process accommodates large strains that can be beneficially utilized in applications requiring high ductility in addition to ultra-high strength.
机译:金属纳米线的机械响应由于其超高的强度和独特的变形特性,最近引起了人们的极大兴趣。原子模拟已预测,以面为中心的立方金属纳米线会根据线轴与加载方向之间的方向以不同的模式变形。在这里,我们报告通过结合原位透射电子显微镜和分子动力学模拟,在[110]定向金纳米线的单轴加载过程中发生特定变形机制的条件。此外,通过执行循环单轴加载,我们分别通过拉伸和压缩中的孪生和连续解缠显示出可逆的塑性变形。分子动力学模拟根据在前,后部分位错,其潜在的成核位点和能垒上与取向有关的解析切应力合理化了观察到的行为。这种可逆的孪生-解缠过程可容纳较大的应变,除了超高强度外,还可用于需要高延展性的应用中。

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