论文标题
自发扣石墨烯的弹性Landau水平的相关性
Correlations in the elastic Landau level of spontaneously buckled graphene
论文作者
论文摘要
范德华材料中几乎扁平带的电子相关性已证明是工程师人造量子物质的强大游乐场,包括超导体,相关的绝缘体和拓扑物质。这种现象学已在多种扭曲的范德华材料(例如石墨烯和二甲基化剂多层)中实验观察到。在这里,我们表明自发弯曲的石墨烯可以产生相关状态,从弹性伪兰道水平出现。我们的结果基于最近的实验发现报告,该发现报告说,当放置在HBN或NBSE $ _2 $底物的顶部时,皱纹的石墨烯片会放松,形成一种周期性的远距离屈曲模式。在存在伪轴仪场的情况下,电子可以准确地描述低能物理学,从而导致形成Sublattice Polarized Landau水平。此外,我们验证了Zeroth Landau级别的高密度导致形成定期调制的铁磁性地面,可以通过应用外部电场来控制。我们的结果表明,周期性紧张的石墨烯是探索由相关弹性Landau水平引起的新兴电子状态的多功能平台。
Electronic correlations stemming from nearly flat bands in van der Waals materials have demonstrated to be a powerful playground to engineer artificial quantum matter, including superconductors, correlated insulators and topological matter. This phenomenology has been experimentally observed in a variety of twisted van der Waals materials, such as graphene and dichalcogenide multilayers. Here we show that spontaneously buckled graphene can yield a correlated state, emerging from an elastic pseudo Landau level. Our results build on top of recent experimental findings reporting that, when placed on top of hBN or NbSe$_2$ substrates, wrinkled graphene sheets relax forming a periodic, long-range buckling pattern. The low-energy physics can be accurately described by electrons in the presence of a pseudo-axial gauge field, leading to the formation of sublattice-polarized Landau levels. Moreover, we verify that the high density of states at the zeroth Landau level leads to the formation of a periodically modulated ferrimagnetic groundstate, which can be controlled by the application of external electric fields. Our results indicate that periodically strained graphene is a versatile platform to explore emergent electronic states arising from correlated elastic Landau levels.