论文标题

垂直电场驱动Chern的过渡和层极化的变化

Perpendicular electric field drives Chern transitions and layer polarization changes in Hofstadter bands

论文作者

Adak, Pratap Chandra, Sinha, Subhajit, Giri, Debasmita, Mukherjee, Dibya Kanti, Chandan, Sangani, L. D. Varma, Layek, Surat, Mukherjee, Ayshi, Watanabe, Kenji, Taniguchi, Takashi, Fertig, H. A., Kundu, Arijit, Deshmukh, Mandar M.

论文摘要

Moiré超级晶格工程师带性能,并能够观察霍夫斯塔特蝴蝶的分形能量光谱。最近,由小角度的Moiré系统中的扁平带托管的相关电子物理学一直在前景。但是,Moiré带拓扑在单粒子框架中的含义很少在实验中探索。一个杰出的问题是了解不需要电子相关性的霍夫史塔物理学对霍夫史塔特物理的影响。我们的工作通过使用扭曲的双层式双层石墨烯(TDBG)进行实验研究Chern状态转换,它提供了电场可调拓扑带,与扭曲的双层石墨烯不同。在这里,我们表明,非平凡的拓扑结构在Hofstadter光谱中反映出,特别是通过显示一系列hofstadter间隙,这些间隙依次切换其Chern数字,同时改变垂直电场。我们的实验与理论计算一起表明,电荷极化与该系统中拓扑转变的变化的关键作用。在几层扭曲系统中,层极化可能在拓扑状态中起重要作用。此外,我们的工作将TDBG建立为具有非平凡磁电耦合的新型Hofstadter平台。

Moiré superlattices engineer band properties and enable observation of fractal energy spectra of Hofstadter butterfly. Recently, correlated-electron physics hosted by flat bands in small-angle moiré systems has been at the foreground. However, the implications of moiré band topology within the single-particle framework are little explored experimentally. An outstanding problem is understanding the effect of band topology on Hofstadter physics, which does not require electron correlations. Our work experimentally studies Chern state switching in the Hofstadter regime using twisted double bilayer graphene (TDBG), which offers electric field tunable topological bands, unlike twisted bilayer graphene. Here we show that the nontrivial topology reflects in the Hofstadter spectra, in particular, by displaying a cascade of Hofstadter gaps that switch their Chern numbers sequentially while varying the perpendicular electric field. Our experiments together with theoretical calculations suggest a crucial role of charge polarization changing concomitantly with topological transitions in this system. Layer polarization is likely to play an important role in the topological states in few-layer twisted systems. Moreover, our work establishes TDBG as a novel Hofstadter platform with nontrivial magnetoelectric coupling.

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