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揭示扭曲双层双层石墨烯莫尔超晶格中应变梯度诱导的机电耦合

Unraveling Strain Gradient Induced Electromechanical Coupling in Twisted Double Bilayer Graphene Moiré Superlattices.

作者信息

Li Yuhao, Wang Xiao, Tang Deqi, Wang Xi, Watanabe Kenji, Taniguchi Takashi, Gamelin Daniel R, Cobden David H, Yankowitz Matthew, Xu Xiaodong, Li Jiangyu

机构信息

Department of Physics, University of Washington, Seattle, WA, 98195, USA.

Department of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen, Guangdong, 518055, China.

出版信息

Adv Mater. 2021 Dec;33(51):e2105879. doi: 10.1002/adma.202105879. Epub 2021 Oct 10.

Abstract

Moiré superlattices of 2D materials with a small twist angle are thought to exhibit appreciable flexoelectric effect, though unambiguous confirmation of their flexoelectricity is challenging due to artifacts associated with commonly used piezoresponse force microscopy (PFM). For example, unexpectedly small phase contrast (≈8°) between opposite flexoelectric polarizations is reported in twisted bilayer graphene (tBG), though theoretically predicted value is 180°. Here a methodology is developed to extract intrinsic moiré flexoelectricity using twisted double bilayer graphene (tDBG) as a model system, probed by lateral PFM. For small twist angle samples, it is found that a vectorial decomposition is essential to recover the small intrinsic flexoelectric response at domain walls from a large background signal. The obtained threefold symmetry of commensurate domains with significant flexoelectric response at domain walls is fully consistent with the theoretical calculations. Incommensurate domains in tDBG with relatively large twist angles can also be observed by this technique. A general strategy is provided here for unraveling intrinsic flexoelectricity in van der Waals moiré superlattices while providing insights into engineered symmetry breaking in centrosymmetric materials.

摘要

人们认为,具有小扭转角的二维材料的莫尔超晶格会表现出可观的挠曲电效应,不过,由于与常用的压电力显微镜(PFM)相关的假象,对其挠曲电效应的明确确认具有挑战性。例如,据报道,在扭曲双层石墨烯(tBG)中,相反挠曲电极化之间的相衬度意外地小(约8°),而理论预测值为180°。在此,开发了一种方法,以扭曲双双层石墨烯(tDBG)为模型系统,通过横向PFM进行探测,来提取本征莫尔挠曲电效应。对于小扭转角样品,发现矢量分解对于从大背景信号中恢复畴壁处小的本征挠曲电响应至关重要。所获得的具有显著挠曲电响应的共格畴的三重对称性与理论计算完全一致。通过该技术还可以观察到具有相对大扭转角的tDBG中的非共格畴。本文提供了一种通用策略,用于揭示范德华莫尔超晶格中的本征挠曲电效应,同时深入了解中心对称材料中的工程对称性破缺。

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