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Atomic force microscopy captures quantized plastic deformation in gold nanowires

机译:原子力显微镜捕获金纳米线中量化的塑性变形

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摘要

Scanning probe microscopy has become a powerful tool to detect structural changes in small clusters of atoms. Herein, we use an atomic force microscope to measure the length of gold nanowire structures during extension and compression cycles. We have found that nanowires elongate under force in quantized steps of up to three integer multiples of 1.76 Å and that they shorten spontaneously in steps of 1.52 Å. Our results can be explained by the sliding of crystal planes within the gold nanowires creating stacking faults that change the local structure from face-centered cubic to hexagonal close packed. Our data also show that there can be up to three simultaneous slip events, in good agreement with the tetrahedral arrangement of slip planes in a gold crystal. These experiments provide direct evidence for the mechanism underlying the plastic deformation of a nanowire. A similar approach can be used to examine the atomic events underlying the plastic failure of other metals and their alloys.
机译:扫描探针显微镜已成为检测小原子簇中结构变化的强大工具。在本文中,我们使用原子力显微镜在延伸和压缩循环中测量金纳米线结构的长度。我们发现纳米线在力的作用下以高达1.76 three的三个整数倍的量化步长伸长,并且以1.52 steps的步长自发缩短。我们的结果可以通过金纳米线内晶面的滑动产生堆叠缺陷来解释,该缺陷使局部结构从面心立方变为六方密堆积。我们的数据还显示,最多可以同时发生三个滑移事件,这与金晶体中滑移面的四面体排列非常吻合。这些实验为纳米线塑性变形的潜在机制提供了直接证据。可以使用类似的方法来检查其他金属及其合金的塑性破坏背后的原子事件。

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