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魔角扭曲双层石墨烯中的陈绝缘体、范霍夫奇点和拓扑平带

Chern insulators, van Hove singularities and topological flat bands in magic-angle twisted bilayer graphene.

作者信息

Wu Shuang, Zhang Zhenyuan, Watanabe K, Taniguchi T, Andrei Eva Y

机构信息

Department of Physics and Astronomy, Rutgers University, New Brunswick, NJ, USA.

National Institute for Materials Science, Tsukuba, Japan.

出版信息

Nat Mater. 2021 Apr;20(4):488-494. doi: 10.1038/s41563-020-00911-2. Epub 2021 Feb 15.

Abstract

Magic-angle twisted bilayer graphene exhibits intriguing quantum phase transitions triggered by enhanced electron-electron interactions when its flat bands are partially filled. However, the phases themselves and their connection to the putative non-trivial topology of the flat bands are largely unexplored. Here we report transport measurements revealing a succession of doping-induced Lifshitz transitions that are accompanied by van Hove singularities, which facilitate the emergence of correlation-induced gaps and topologically non-trivial subbands. In the presence of a magnetic field, well-quantized Hall plateaus at a filling of 1,2,3 carriers per moiré cell reveal the subband topology and signal the emergence of Chern insulators with Chern numbers, C = 3,2,1, respectively. Surprisingly, for magnetic fields exceeding 5 T we observe a van Hove singularity at a filling of 3.5, suggesting the possibility of a fractional Chern insulator. This van Hove singularity is accompanied by a crossover from low-temperature metallic, to high-temperature insulating behaviour, characteristic of entropically driven Pomeranchuk-like transitions.

摘要

魔角扭曲双层石墨烯在其平带部分填充时,会因增强的电子-电子相互作用而展现出有趣的量子相变。然而,这些相本身以及它们与平带假定的非平凡拓扑结构的联系在很大程度上尚未得到探索。在此,我们报告了输运测量结果,揭示了一系列由掺杂诱导的里夫希茨转变,这些转变伴随着范霍夫奇点,这有助于关联诱导能隙和拓扑非平凡子带的出现。在磁场存在的情况下,每个莫尔晶胞填充1、2、3个载流子时出现的量子化良好的霍尔平台揭示了子带拓扑结构,并分别表明了陈数为C = 3、2、1的陈绝缘体的出现。令人惊讶的是,对于超过5 T的磁场,我们在填充为3.5时观察到一个范霍夫奇点,这表明存在分数陈绝缘体的可能性。这个范霍夫奇点伴随着从低温金属行为到高温绝缘行为的转变,这是熵驱动的类波梅兰丘克转变的特征。

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