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Quantum Spin Hall Effect in Two-Dimensional Crystals of Transition-Metal Dichalcogenides

机译:过渡金属硫属元素化物的二维晶体中的量子自旋霍尔效应

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We propose to engineer time-reversal-invariant topological insulators in two-dimensional crystals of transition-metal dichalcogenides (TMDCs). We note that, at low doping, semiconducting TMDCs under shear strain will develop spin-polarized Landau levels residing in different valleys. We argue that gaps between Landau levels in the range of 10-100 K are within experimental reach. In addition, we point out that a superlattice arising from a moire pattern can lead to topologically nontrivial subbands. As a result, the edge transport becomes quantized, which can be probed in multiterminal devices made using strained 2D crystals and/or heterostructures. The strong d character of valence and conduction bands may also allow for the investigation of the effects of electron correlations on the topological phases.
机译:我们建议在过渡金属二卤化物(TMDC)的二维晶体中设计时间反向不变的拓扑绝缘体。我们注意到,在低掺杂下,在剪切应变下的半导体TMDC将形成驻留在不同山谷中的自旋极化的Landau能级。我们认为,Landau的水平之间的差异在10-100 K的范围内是实验可及的。此外,我们指出,由莫尔条纹引起的超晶格会导致拓扑上不平凡的子带。结果,边缘传输变得量化,可以在使用应变2D晶体和/或异质结构制成的多端子设备中进行探测。价带和导带的强d特性也可能允许研究电子相关性对拓扑相的影响。

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