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石墨烯中 Landau 能级向边缘态的演化。

Evolution of Landau levels into edge states in graphene.

机构信息

Department of Physics and Astronomy, Rutgers University, Piscataway, New Jersey 08855, USA.

出版信息

Nat Commun. 2013;4:1744. doi: 10.1038/ncomms2767.

Abstract

Two-dimensional electron systems in the presence of a magnetic field support topologically ordered states, in which the coexistence of an insulating bulk with conducting one-dimensional chiral edge states gives rise to the quantum Hall effect. For systems confined by sharp boundaries, theory predicts a unique edge-bulk correspondence, which is central to proposals of quantum Hall-based topological qubits. However, in conventional semiconductor-based two-dimensional electron systems, these elegant concepts are difficult to realize, because edge-state reconstruction due to soft boundaries destroys the edge-bulk correspondence. Here we use scanning tunnelling microscopy and spectroscopy to follow the spatial evolution of electronic (Landau) levels towards an edge of graphene supported above a graphite substrate. We observe no edge-state reconstruction, in agreement with calculations based on an atomically sharp boundary. Our results single out graphene as a system where the edge structure can be controlled and the edge-bulk correspondence is preserved.

摘要

在磁场存在的情况下,二维电子系统支持拓扑有序状态,其中绝缘体和一维手性边缘态的共存导致了量子霍尔效应。对于由尖锐边界限制的系统,理论预测了一种独特的边缘-体对应关系,这是基于量子霍尔效应的拓扑量子位的核心。然而,在传统的基于半导体的二维电子系统中,这些优雅的概念很难实现,因为软边界引起的边缘态重构破坏了边缘-体对应关系。在这里,我们使用扫描隧道显微镜和光谱学来跟踪电子(朗道)能级朝着石墨烯边缘的空间演化,该石墨烯支撑在石墨衬底上。我们没有观察到边缘态重构,这与基于原子尖锐边界的计算结果一致。我们的结果表明,石墨烯是一种可以控制边缘结构并保持边缘-体对应关系的系统。

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