论文标题

石墨烯纳米结构中的扫描门显微镜

Scanning gate microscopy in graphene nanostructures

论文作者

Chen, Xianzhang, Weick, Guillaume, Weinmann, Dietmar, Jalabert, Rodolfo A.

论文摘要

系统地研究了扫描栅极显微镜尖端的纳米纤维和纳米收缩的电导。使用用于非侵入性探针的散射方法,用尖端电势干扰引起的一阶电导校正是根据未渗透结构的散射状态明确表示的。数值计算证实了扰动结果,表明二阶期限在电导地位中占上风,表现出用于扶手椅石墨烯条的通用缩放定律。对于更强的尖端,在特定的探针电势宽度和扰动状态以外的强度下,电导校正揭示了共振的出现,起源于被困在尖端下方的状态。扶手椅金属带的零透射能量模式显示对探针的远程静电电位不敏感。对于在条带上定义的纳米收缩,扫描门显微镜可以深入了解电导量化的分解。一阶校正通常以低尖端强度主导,而对于与微弱电导高原相关的费米能,二阶校正在相对较小的电势强度方面占主导地位。根据状态部分局部密度的空间依赖性,最大的尖端效应发生在收缩的中心部分,靠近边缘。与扶手椅纳米结构相似的纳米骨和纳米收缩表现出类似的响应,除非由尖端电势引起的间隔耦合会破坏手性边缘状态。

The conductance of graphene nanoribbons and nanoconstrictions under the effect of a scanning gate microscopy tip is systematically studied. Using a scattering approach for noninvasive probes, the first- and second-order conductance corrections caused by the tip potential disturbance are expressed explicitly in terms of the scattering states of the unperturbed structure. Numerical calculations confirm the perturbative results, showing that the second-order term prevails in the conductance plateaus, exhibiting a universal scaling law for armchair graphene strips. For stronger tips, at specific probe potential widths and strengths beyond the perturbative regime, the conductance corrections reveal the appearance of resonances originated from states trapped below the tip. The zero-transverse-energy mode of an armchair metallic strip is shown to be insensitive to the long-range electrostatic potential of the probe. For nanoconstrictions defined on a strip, scanning gate microscopy allows to get insight into the breakdown of conductance quantization. The first-order correction generically dominates at low tip strength, while for Fermi energies associated with faint conductance plateaus, the second-order correction becomes dominant for relatively small potential tip strengths. In accordance with the spatial dependence of the partial local density of states, the largest tip effect occurs in the central part of the constriction, close to the edges. Nanoribbons and nanoconstrictions with zigzag edges exhibit a similar response as in the case of armchair nanostructures, except when the intervalley coupling induced by the tip potential destroys the chiral edge states.

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