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石墨烯对层状磁绝缘体的栅极可调近邻效应

Gate-Tunable Proximity Effects in Graphene on Layered Magnetic Insulators.

作者信息

Tseng Chun-Chih, Song Tiancheng, Jiang Qianni, Lin Zhong, Wang Chong, Suh Jaehyun, Watanabe Kenji, Taniguchi Takashi, McGuire Michael A, Xiao Di, Chu Jiun-Haw, Cobden David H, Xu Xiaodong, Yankowitz Matthew

机构信息

Materials Science and Technology Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee37831, United States.

Pacific Northwest National Laboratory, Richland, Washington99354, United States.

出版信息

Nano Lett. 2022 Nov 9;22(21):8495-8501. doi: 10.1021/acs.nanolett.2c02931. Epub 2022 Oct 24.

Abstract

The extreme versatility of van der Waals materials originates from their ability to exhibit new electronic properties when assembled in close proximity to dissimilar crystals. For example, although graphene is inherently nonmagnetic, recent work has reported a magnetic proximity effect in graphene interfaced with magnetic substrates, potentially enabling a pathway toward achieving a high-temperature quantum anomalous Hall effect. Here, we investigate heterostructures of graphene and chromium trihalide magnetic insulators (CrI, CrBr, and CrCl). 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 gate-dependent transport features. The charge transfer can additionally be altered upon switching the magnetic states of the nearest CrI layers. Our results provide a roadmap for exploiting proximity effects arising in graphene coupled to magnetic insulators.

摘要

范德华材料的极端多功能性源于它们在与不同晶体紧密组装时展现新电子特性的能力。例如,尽管石墨烯本质上是非磁性的,但最近的研究报告了石墨烯与磁性衬底界面处的磁近邻效应,这可能为实现高温量子反常霍尔效应开辟一条途径。在此,我们研究了石墨烯与三卤化铬磁性绝缘体(CrI、CrBr和CrCl)的异质结构。令人惊讶的是,我们在石墨烯中未能检测到磁交换场,而是发现了具有前所未有的栅极可调性的近邻效应。由于来自相邻磁性绝缘体的电荷转移,石墨烯变得高度空穴掺杂,并进一步展现出各种非典型的栅极依赖输运特性。在切换最邻近CrI层的磁态时,电荷转移还可以发生改变。我们的结果为利用石墨烯与磁性绝缘体耦合产生的近邻效应提供了路线图。

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