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Observation of Coulomb gap in the quantum spin Hall candidate single-layer 1T'-WTe2.


ABSTRACT: The two-dimensional topological insulators host a full gap in the bulk band, induced by spin-orbit coupling (SOC) effect, together with the topologically protected gapless edge states. However, it is usually challenging to suppress the bulk conductance and thus to realize the quantum spin Hall (QSH) effect. In this study, we find a mechanism to effectively suppress the bulk conductance. By using the quasiparticle interference technique with scanning tunneling spectroscopy, we demonstrate that the QSH candidate single-layer 1T'-WTe2 has a semimetal bulk band structure with no full SOC-induced gap. Surprisingly, in this two-dimensional system, we find the electron-electron interactions open a Coulomb gap which is always pinned at the Fermi energy (EF). The opening of the Coulomb gap can efficiently diminish the bulk state at the EF and supports the observation of the quantized conduction of topological edge states.

SUBMITTER: Song YH 

PROVIDER: S-EPMC6172222 | biostudies-literature | 2018 Oct

REPOSITORIES: biostudies-literature

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Observation of Coulomb gap in the quantum spin Hall candidate single-layer 1T'-WTe<sub>2</sub>.

Song Ye-Heng YH   Jia Zhen-Yu ZY   Zhang Dongqin D   Zhu Xin-Yang XY   Shi Zhi-Qiang ZQ   Wang Huaiqiang H   Zhu Li L   Yuan Qian-Qian QQ   Zhang Haijun H   Xing Ding-Yu DY   Li Shao-Chun SC  

Nature communications 20181004 1


The two-dimensional topological insulators host a full gap in the bulk band, induced by spin-orbit coupling (SOC) effect, together with the topologically protected gapless edge states. However, it is usually challenging to suppress the bulk conductance and thus to realize the quantum spin Hall (QSH) effect. In this study, we find a mechanism to effectively suppress the bulk conductance. By using the quasiparticle interference technique with scanning tunneling spectroscopy, we demonstrate that th  ...[more]

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