论文标题

在魔术角扭曲双层石墨烯中追踪相关的Chern绝缘子

Tracing out Correlated Chern Insulators in Magic Angle Twisted Bilayer Graphene

论文作者

Choi, Youngjoon, Kim, Hyunjin, Peng, Yang, Thomson, Alex, Lewandowski, Cyprian, Polski, Robert, Zhang, Yiran, Arora, Harpreet Singh, Watanabe, Kenji, Taniguchi, Takashi, Alicea, Jason, Nadj-Perge, Stevan

论文摘要

魔法扭曲的双层石墨烯(MATBG)表现出一系列相关现象,这些现象来自强烈的电子电子相互作用。这些相互作用使得费米表面在$ \ pm 1,\ pm 2,\ pm 3 $电子占据每个moir \'e单位电池时高度容易重建,并导致形成相关的绝缘,超导和铁磁相。尽管一些阶段已被证明具有非零的Chern数量,但许多其他阶段的局部微观特性和拓扑特性仍然难以捉摸。在这里,我们介绍了一组有关扫描隧道显微镜(STM)的新型技术铰链,以绘制MATBG中出现的拓扑阶段,这些拓扑阶段在有限的磁场中出现。通过遵循静电掺杂和磁场在费米水平上的局部密度(LDO)的局部密度的演变,我们可以看到局部Landau粉丝图,这使我们能够将Chern号直接分配给所有观察到的阶段。我们揭示了有限场中整数填充物中散发出的六个拓扑阶段的存在,其起源与相关性驱动的一系列对称性的过渡有关。空间分辨和电子密度调整的LDOS图进一步表明,这些拓扑阶段只能在魔术角值周围以较小的扭曲角度形成。微观起源和扭转角度的极端敏感性都将这些拓扑阶段与观察到的距电荷中立性的兰道水平区分开。此外,我们观察到,即使是在低场处采取的电荷中的兰道频谱也可以通过相互作用进行了很大的修改,并且在零兰道级之间表现出意外的分裂,可能大于$ {\ sim} \,3-5 $ MEV。我们的结果表明,强烈的电子相互作用如何影响MATBG的带状结构并导致形成支持相关性拓扑阶段。

Magic-angle twisted bilayer graphene (MATBG) exhibits a range of correlated phenomena that originate from strong electron-electron interactions. These interactions make the Fermi surface highly susceptible to reconstruction when $ \pm 1, \pm 2, \pm 3$ electrons occupy each moir\' e unit cell and lead to the formation of correlated insulating, superconducting and ferromagnetic phases. While some phases have been shown to carry a non-zero Chern number, the local microscopic properties and topological character of many other phases remain elusive. Here we introduce a set of novel techniques hinging on scanning tunneling microscopy (STM) to map out topological phases in MATBG that emerge in finite magnetic field. By following the evolution of the local density of states (LDOS) at the Fermi level with electrostatic doping and magnetic field, we visualize a local Landau fan diagram that enables us to directly assign Chern numbers to all observed phases. We uncover the existence of six topological phases emanating from integer fillings in finite fields and whose origin relates to a cascade of symmetry-breaking transitions driven by correlations. The spatially resolved and electron-density-tuned LDOS maps further reveal that these topological phases can form only in a small range of twist angles around the magic-angle value. Both the microscopic origin and extreme sensitivity to twist angle differentiate these topological phases from the Landau levels observed near charge neutrality. Moreover, we observe that even the charge-neutrality Landau spectrum taken at low fields is considerably modified by interactions and exhibits an unexpected splitting between zero Landau levels that can be as large as ${\sim }\,3-5$ meV. Our results show how strong electronic interactions affect the band structure of MATBG and lead to the formation of correlation-enabled topological phases.

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