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STM observation of electronic wave interference effect in finite-sized graphite with dislocation-network structures

机译:具有位错网络结构的有限尺寸石墨中电子波干扰效应的STM观察

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Superperiodic patterns near a step edge were observed by scanning tunneling microscopy on several-layer-thick graphite sheets on a highly oriented pyrolitic graphite substrate, where a dislocation network is generated at the interface between the graphite overlayer and the substrate. Triangular- and rhombic-shaped periodic patterns whose periodicities are around 100 nm were observed on the upper terrace near the step edge. In contrast, only outlines of the patterns similar to those on the upper terrace were observed on the lower terrace. On the upper terrace, their geometrical patterns gradually disappeared and became similar to those on the lower terrace without any changes of their periodicity in increasing a bias voltage. By assuming a periodic scattering potential at the interface due to dislocations, the varying corrugation amplitudes of the patterns can be understood as changes in the local density of states as a result of the beat of perturbed and unperturbed waves, i.e., the interference in an overlayer. The observed changes in the image depending on an overlayer height and a bias voltage can be explained by the electronic wave interference in the ultrathin overlayer distorted under the influence of dislocation-network structures.
机译:通过扫描隧道显微镜在高度取向的热解石墨衬底上的几层厚的石墨片上观察到台阶边缘附近的超周期性图案,其中在石墨覆盖层和衬底之间的界面处产生位错网络。在台阶边缘附近的上层平台上观察到周期约为100 nm的三角形和菱形周期模式。相反,在下露台上仅观察到与上露台类似的图案轮廓。在上层露台上,它们的几何图案逐渐消失并变得类似于下层露台上的几何图案,并且在增加偏置电压时其周期性没有任何变化。通过假设由于位错而在界面处具有周期性的散射势,可以将图案的变化波纹幅度理解为由于扰动波和非扰动波的节拍而导致的状态局部密度的变化,即上层的干涉。可以根据位错网络结构的影响而变形的超薄覆盖层中的电子波干扰可以解释观察到的取决于覆盖层高度和偏压的图像变化。

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