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拓扑离域和表面通道分离的调谐在 BiSeTe 拓扑绝缘体薄膜中。

Topological delocalization and tuning of surface channel separation in BiSeTe Topological Insulator Thin films.

机构信息

Indian Institute of Science Education and Research, Kolkata, Mohanpur, 741246, Nadia District, West Bengal, India.

出版信息

Sci Rep. 2017 Jul 7;7(1):4924. doi: 10.1038/s41598-017-04458-2.

Abstract

The surface states of a 3D topological insulator (TI) exhibit topological protection against backscattering. However, the contribution of bulk electrons to the transport data is an impediment to the topological protection of surface states. We report the tuning of the chemical potential in the bulk in BiSeTe TI thin films, pinning it near the center of the bulk band gap, thereby suppressing the bulk carriers. The temperature dependent resistance of these films show activated behavior down to 50 K, followed by a metallic transition at lower temperatures, a hallmark of robustness of TI surface states. Manifestation of topological protection and surface dominated transport is explained by 2D weak antilocalization phenomenon. We further explore the effect of surface to bulk coupling in TI in this work, which is captured by the number of effective conducting surface channels that participate in the transport. The presence of a single conducting channel indicates a strong surface to bulk coupling which is detrimental to purely topological transport. We demonstrate the decoupling of topological surface states on opposite surfaces of thin films, thereby suppressing the bulk transport. Our findings provide a deeper understanding of surface to bulk coupling along with topological transport behavior and their respective tunability.

摘要

三维拓扑绝缘体 (TI) 的表面态表现出对背散射的拓扑保护。然而,体电子对输运数据的贡献是对表面态拓扑保护的障碍。我们报告了在 BiSeTe TI 薄膜中调谐体的化学势,将其固定在体带隙的中心附近,从而抑制了体载流子。这些薄膜的温度相关电阻在 50 K 以下表现出激活行为,然后在较低温度下发生金属转变,这是 TI 表面态稳健性的标志。拓扑保护和表面主导输运的表现可以通过二维弱反局域现象来解释。在这项工作中,我们进一步研究了 TI 中表面到体的耦合效应,这可以通过参与输运的有效传导表面通道的数量来捕获。单个传导通道的存在表明表面到体的强耦合对纯粹的拓扑输运是不利的。我们证明了薄膜相反表面上的拓扑表面态的去耦,从而抑制了体传输。我们的发现提供了对表面到体的耦合以及拓扑输运行为及其各自可调性的更深入理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d635/5501793/2825f81271e7/41598_2017_4458_Fig1_HTML.jpg

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