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拓扑表面态的表面势垒传输。

Transmission of topological surface states through surface barriers.

机构信息

Joseph Henry Laboratories & Department of Physics, Princeton University, Princeton, New Jersey 08544, USA.

出版信息

Nature. 2010 Jul 15;466(7304):343-6. doi: 10.1038/nature09189.

Abstract

Topological surface states are a class of novel electronic states that are of potential interest in quantum computing or spintronic applications. Unlike conventional two-dimensional electron states, these surface states are expected to be immune to localization and to overcome barriers caused by material imperfection. Previous experiments have demonstrated that topological surface states do not backscatter between equal and opposite momentum states, owing to their chiral spin texture. However, so far there is no evidence that these states in fact transmit through naturally occurring surface defects. Here we use a scanning tunnelling microscope to measure the transmission and reflection probabilities of topological surface states of antimony through naturally occurring crystalline steps separating atomic terraces. In contrast to non-topological surface states of common metals (copper, silver and gold), which are either reflected or absorbed by atomic steps, we show that topological surface states of antimony penetrate such barriers with high probability. This demonstration of the extended nature of antimony's topological surface states suggests that such states may be useful for high current transmission even in the presence of atomic-scale irregularities-an electronic feature sought to efficiently interconnect nanoscale devices.

摘要

拓扑表面态是一类新型的电子态,它们在量子计算或自旋电子学应用中具有潜在的应用价值。与传统的二维电子态不同,这些表面态预计不会受到局域化的影响,并且能够克服由材料不完美引起的障碍。以前的实验已经证明,拓扑表面态由于其手征自旋结构,在相等和相反动量态之间不会发生背散射。然而,到目前为止,还没有证据表明这些态实际上可以通过自然存在的表面缺陷传输。在这里,我们使用扫描隧道显微镜来测量通过自然存在的晶状台阶分离原子平台的锑的拓扑表面态的透射率和反射率。与常见金属(铜、银和金)的非拓扑表面态不同,这些表面态要么被原子台阶反射,要么被吸收,我们表明,锑的拓扑表面态以高概率穿透这种障碍。这种对锑的拓扑表面态的扩展性质的证明表明,即使存在原子尺度的不规则性,这些态也可能有助于高效地互连纳米级器件,这是一种在高电流传输中寻求的电子特性。

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