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

机译:量子自旋霍尔候选单层1T’-WTe2中库仑间隙的观察

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摘要

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.
机译:二维拓扑绝缘体在自旋轨道耦合(SOC)效应的诱导下,在体能带中占据了一个完整的间隙,并具有受拓扑保护的无间隙边缘状态。然而,抑制体电导并因此实现量子自旋霍尔(QSH)效应通常具有挑战性。在这项研究中,我们找到了一种有效抑制体电导的机制。通过使用准粒子干涉技术和扫描隧道光谱,我们证明了QSH候选单层1T’-WTe2具有半金属体带结构,没有完整的SOC诱导间隙。出乎意料的是,在这个二维系统中,我们发现电子与电子的相互作用打开了一个库仑间隙,该间隙总是固定在费米能量(EF)上。库仑间隙的打开可以有效地减小EF的体态,并支持观察拓扑边缘态的量化传导。

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