Wavefronts Dislocations of Friedel Oscillations in Graphene: Trigonal Warping Effect

Jin Yang, Shu-Hui Zhang, Wen Yang
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Abstract

The electron waves of a host system exhibit an oscillating response to an external impurity, namely Friedel oscillations, extensively studied in two‐dimensional materials. Recently, wavefront dislocations, a new feature of Friedel oscillations, have been revealed in graphene. However, previous analytical works have been limited to the linear dispersion of graphene. In this study, the fate of wavefront dislocations is investigated numerically in Friedel oscillations beyond the linear regime. The wavefront dislocations are robust against the trigonal warping effect, crucial for high doping graphene, due to the invariant winding number of the tight‐binding energy band. Furthermore, the opening of the gap, increasing the electronic Fermi wavelength, can highlight the wavefront dislocations blurred by intravalley scattering induced short‐range oscillations. These results should be observable using current experimental technology. Therefore, this study not only demonstrates the robust existence of wavefront dislocations in Friedel oscillations over a wide range of energies but also deepens the understanding of intervalley scattering in graphene and other two‐dimensional valleytronic materials.This article is protected by copyright. All rights reserved.

Abstract Image

石墨烯中弗里德尔振荡的波面位错:三边翘曲效应
宿主系统的电子波对外部杂质表现出振荡响应,即弗里德尔振荡,这在二维材料中得到了广泛研究。最近,在石墨烯中发现了弗里德尔振荡的新特征--波前位错。然而,之前的分析工作仅限于石墨烯的线性分散。在本研究中,我们用数值方法研究了弗里德尔振荡中超越线性机制的波前位错的命运。由于紧束缚能带的缠绕数不变,波前位错能够抵御对高掺杂石墨烯至关重要的三方翘曲效应。此外,间隙的打开会增加电子费米波长,从而突出由谷内散射引起的短程振荡所模糊的波前位错。利用当前的实验技术应该可以观察到这些结果。因此,这项研究不仅证明了弗里德尔振荡中波面位错在宽能量范围内的稳健存在,而且加深了人们对石墨烯和其他二维谷电材料中的谷内散射的理解。本文受版权保护。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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