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石墨烯中载流子穿过晶界的拓扑方面。

Topological aspects of charge-carrier transmission across grain boundaries in graphene.

机构信息

Institute of Theoretical Physics, Ecole Polytechnique Fédérale de Lausanne (EPFL), CH-1015 Lausanne, Switzerland.

出版信息

Nano Lett. 2014 Jan 8;14(1):250-4. doi: 10.1021/nl403852a. Epub 2013 Dec 4.

Abstract

Dislocations and grain boundaries are intrinsic topological defects of large-scale polycrystalline samples of graphene. These structural irregularities have been shown to strongly affect electronic transport in this material. Here, we report a systematic investigation of the transmission of charge carriers across the grain-boundary defects in polycrystalline graphene by means of the Landauer-Büttiker formalism within the tight-binding approximation. Calculations reveal a strong suppression of transmission at low energies upon decreasing the density of dislocations with the smallest Burgers vector b = (1,0). The observed transport anomaly is explained from the point of view of resonant backscattering due to localized states of topological origin. These states are related to the gauge field associated with all dislocations characterized by b = (n,m) with n - m ≠ 3q (q ∈ Z). Our work identifies an important source of charge-carrier scattering caused by the topological defects present in large-area graphene samples produced by chemical vapor deposition.

摘要

位错和晶界是石墨烯大尺寸多晶样品的固有拓扑缺陷。这些结构不规则性已被证明会强烈影响这种材料的电子输运。在这里,我们通过紧束缚近似中的 Landau-Büttiker 形式,对多晶石墨烯中晶界缺陷处载流子的传输进行了系统的研究。计算表明,当最小 Burgers 矢量 b = (1,0)的位错密度降低时,在低能量下的传输会被强烈抑制。从拓扑起源的局域态引起的共振背散射的角度解释了观察到的输运异常。这些态与与所有位错相关联的规范场有关,这些位错的 Burgers 矢量为 b = (n,m),其中 n-m ≠ 3q(q ∈ Z)。我们的工作确定了由化学气相沉积制备的大面积石墨烯样品中存在的拓扑缺陷引起的载流子散射的一个重要来源。

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