| Literature DB >> 34632646 |
Yuhao Li1,2, Xiao Wang2,3, Deqi Tang3, Xi Wang1,4, Kenji Watanabe5, Takashi Taniguchi6, Daniel R Gamelin4, David H Cobden1, Matthew Yankowitz1,7, Xiaodong Xu1,7, Jiangyu Li2,3,8.
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.Entities:
Keywords: flexoelectricity; lateral piezoelectric force microscope; moiré superlattice; twisted double bilayer graphene
Year: 2021 PMID: 34632646 DOI: 10.1002/adma.202105879
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849