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Observation by ultrasonic atomic force microscopy of reversible displacement of subsurface dislocations in highly oriented pyrolytic graphite

机译:超声原子力显微镜观察高取向热解石墨中亚位错的可逆位移

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摘要

Graphite is an important material for use as a solid lubricant that works even at high temperatures. Generally, the reason for the lubricity is that carbon layers easily slide against each other due to the layered structure with weak interlayer interaction. However, the atomic nature of the interlayer interaction is still not fully understood. To improve this understanding, we applied ultrasonic atomic force microscopy to highly oriented pyrolytic graphite and observed edge dislocations accompanied by extra half-planes. Through observation of the dislocation behaviour under different loads, we found that the dislocation moved laterally by 20 nm as the load increased by 80 nN, and it returned to the original position as the load decreased. To explain this result, we propose a model for the lateral motion of the dislocation, which includes a spring and pinning point. This finding of the large lateral motion confirms the extraordinarily easy sliding between carbon layers, which is relevant to the performance as a solid lubricant. It may also be relevant to the significant material transport in graphite intercalation compounds and in carbon nanotubes.
机译:石墨是即使在高温下也能用作固体润滑剂的重要材料。通常,润滑性的原因是由于层间相互作用弱的层状结构,碳层容易彼此滑动。但是,层间相互作用的原子性质仍未完全理解。为了提高这种理解,我们将超声原子力显微镜应用于高度取向的热解石墨,并观察到边缘错位并伴有额外的半平面。通过观察在不同载荷下的位错行为,我们发现,当载荷增加80 nN时,位错横向移动了20 nm,当载荷降低时,位错返回了原始位置。为了解释这一结果,我们提出了一种位错横向运动的模型,其中包括一个弹簧和一个钉扎点。大横向运动的发现证实了碳层之间非常容易的滑动,这与作为固体润滑剂的性能有关。这也可能与石墨插层化合物和碳纳米管中的重要物质传输有关。

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