论文标题
石墨烯对分层磁绝缘体的栅极可调接近效应
Gate-tunable proximity effects in graphene on layered magnetic insulators
论文作者
论文摘要
二维范德华(VDW)材料的极端多功能性源于其在与不同晶体近端组装时表现出新的电子特性的能力。例如,尽管石墨烯本质上是非磁性的,但最近的工作报告了与磁性底物相连的石墨烯中的磁接近效应,有可能使能够达到高温量子异常霍尔效应的途径。在这里,我们研究了石墨烯和三哈里德铬磁绝缘子的异质结构(CRI $ _3 $,CRBR $ _3 $和CRCL $ _3 $)。令人惊讶的是,我们无法检测石墨烯中的磁交换场,而是发现具有前所未有的栅极可触发性的接近性效果。石墨烯由于从相邻的磁绝缘子的电荷转移而变得高度掺杂,并进一步表现出各种非典型运输特征。这些包括高度扩展的量子霍尔高原,在Landau级填充序列中的突然逆转以及至少在长达几天的时间尺度上的磁滞。对于CRI $ _3 $,我们可以通过门控完全抑制充电转移和所有伴随的非典型运输效果。在切换最近CRI $ _3 $层的磁状态后,可以在一阶相变中更改电荷转移。我们的结果为利用石墨烯中的磁接近效应提供了路线图,并激发了其他磁绝缘子的进一步实验。
The extreme versatility of two-dimensional van der Waals (vdW) materials derives from their ability to exhibit new electronic properties when assembled in proximity with dissimilar crystals. For example, although graphene is inherently non-magnetic, recent work has reported a magnetic proximity effect in graphene interfaced with magnetic substrates, potentially enabling a pathway towards achieving a high-temperature quantum anomalous Hall effect. Here, we investigate heterostructures of graphene and chromium trihalide magnetic insulators (CrI$_3$, CrBr$_3$, and CrCl$_3$). Surprisingly, we are unable to detect a magnetic exchange field in the graphene, but instead discover proximity effects featuring unprecedented gate-tunability. The graphene becomes highly hole-doped due to charge transfer from the neighboring magnetic insulator, and further exhibits a variety of atypical transport features. These include highly extended quantum Hall plateaus, abrupt reversals in the Landau level filling sequence, and hysteresis over at least days-long time scales. In the case of CrI$_3$, we are able to completely suppress the charge transfer and all attendant atypical transport effects by gating. The charge transfer can additionally be altered in a first-order phase transition upon switching the magnetic states of the nearest CrI$_3$ layers. Our results provide a roadmap for exploiting the magnetic proximity effect in graphene, and motivate further experiments with other magnetic insulators.