论文标题
具有相关和拓扑平坦带的可调莫伊尔系统的光谱
Spectroscopy of a Tunable Moiré System with a Correlated and Topological Flat Band
论文作者
论文摘要
Moiré超晶格是由二维晶体单层的扭曲堆叠创建的,可以托管具有平坦能量分散的电子带,其中电子之间的相互作用大大增强。这些超晶格还可以创建非平凡的电子带拓扑结构,使其成为研究多体拓扑量子状态的平台。在迄今为止意识到的Moiré系统中,有一些预计具有带状结构和特性,可以通过垂直电场来控制。扭曲的双重双层石墨烯(TDBG),其中两个Bernal双层石墨烯堆积了一个可调的Moiré系统,为其平坦带的部分填充,运输研究发现了相关的绝缘状态。在这里,我们使用栅极调节的扫描隧道光谱(GT-STS)直接证明TDBG带有电场的TDBG带结构的可调性,并显示了其平面带电子相关性和拓扑的光谱特征。我们的光谱实验与TDBG谱带结构的连续模型表现出了极好的一致性,并揭示了与其孤立的平坦带的部分填充时相关绝缘体间隙的签名。使用磁场的应用探测了该扁平带的拓扑特性,这导致山谷极化和Chern带的分裂,这些带有大量有效的G因子对场的反应强烈。我们的实验提高了我们对TDBG特性的理解,并为此类可调的Moiré系统中的相关性和拓扑进一步研究奠定了基础。
Moiré superlattices created by the twisted stacking of two-dimensional crystalline monolayers can host electronic bands with flat energy dispersion in which interaction among electrons is strongly enhanced. These superlattices can also create non-trivial electronic band topologies making them a platform for study of many-body topological quantum states. Among the moiré systems realized to date, there are those predicted to have band structures and properties which can be controlled with a perpendicular electric field. The twisted double bilayer graphene (TDBG), where two Bernal bilayer graphene are stacked with a twist angle, is such a tunable moiré system, for which partial filling of its flat band, transport studies have found correlated insulating states. Here we use gate-tuned scanning tunneling spectroscopy (GT-STS) to directly demonstrate the tunability of the band structure of TDBG with an electric field and to show spectroscopic signatures of both electronic correlations and topology for its flat band. Our spectroscopic experiments show excellent agreement with a continuum model of TDBG band structure and reveal signatures of a correlated insulator gap at partial filling of its isolated flat band. The topological properties of this flat band are probed with the application of a magnetic field, which leads to valley polarization and the splitting of Chern bands that respond strongly to the field with a large effective g-factor. Our experiments advance our understanding of the properties of TDBG and set the stage for further investigations of correlation and topology in such tunable moiré systems.