Deterministic fabrication of graphene hexagonal boron nitride moiré superlattices
Abstract: The electronic properties of moir\'e heterostructures depend sensitively on the relative orientation between layers of the stack. For example, near-magic-angle twisted bilayer graphene (TBG) commonly shows superconductivity, yet a TBG sample with one of the graphene layers rotationally aligned to a hexagonal Boron Nitride (hBN) cladding layer provided the first experimental observation of orbital ferromagnetism. To create samples with aligned graphene/hBN, researchers often align edges of exfoliated flakes that appear straight in optical micrographs. However, graphene or hBN can cleave along either zig-zag or armchair lattice directions, introducing a 30 degree ambiguity in the relative orientation of two flakes. By characterizing the crystal lattice orientation of exfoliated flakes prior to stacking using Raman and second-harmonic generation for graphene and hBN, respectively, we unambiguously align monolayer graphene to hBN at a near-0 degree, not 30 degree, relative twist angle. We confirm this alignment by torsional force microscopy (TFM) of the graphene/hBN moir\'e on an open-face stack, and then by cryogenic transport measurements, after full encapsulation with a second, non-aligned hBN layer. This work demonstrates a key step toward systematically exploring the effects of the relative twist angle between dissimilar materials within moir\'e heterostructures.
- Lai, X.; Guerci, D.; Li, G.; Watanabe, K.; Taniguchi, T.; Wilson, J.; Pixley, J. H.; Andrei, E. Y. Imaging Self-aligned Moir\’e Crystals and Quasicrystals in Magic-angle Bilayer Graphene on hBN Heterostructures. 2023; \urlhttp://arxiv.org/abs/2311.07819, arXiv:2311.07819 [cond-mat] version: 1.
- Kamat, R. V.; Sharpe, A. L.; Pendharkar, M.; Hu, J.; Tran, S. J.; Zaborski Jr., G.; Hocking, M.; Finney, J.; Watanabe, K.; Taniguchi, T.; Kastner, M. A.; Mannix, A. J.; ; Heinz, T.; Goldhaber-Gordon, D. Data for: Deterministic fabrication of graphene hexagonal boron nitride moire superlattices. 2024; \urlhttps://doi.org/10.25740/np508hx1441, Stanford Digital Repository. https://doi.org/10.25740/np508hx1441. Deposited 24 May 2024.
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