| Literature DB >> 32356662 |
Momoko Onodera1, Kei Kinoshita1, Rai Moriya1, Satoru Masubuchi1, Kenji Watanabe2, Takashi Taniguchi1,2, Tomoki Machida1.
Abstract
We report the first cyclotron resonance study of monolayer graphene under double-moiré potentials in which the crystal axis of graphene is nearly aligned to those of both the top and bottom hexagonal boron nitride (h-BN) layers. Under mid-infrared light irradiation, we observe cyclotron resonance absorption with the following unique features: (1) cyclotron resonance magnetic field BCR is entirely different from that of nonaligned monolayer graphene, (2) BCR exhibits strong electron-hole asymmetry, and (3) splitting of BCR is observed for |ν| < 1, with the split maximum at |ν| = 1, resulting in eyeglass-shaped trajectories. These features are well explained by considering the large bandgap induced by the double moiré potentials, the electron-hole asymmetry in the Fermi velocity, and the Fermi-level-dependent enhancement of spin gaps, which suggests a large electron-electron correlation contribution in this system.Entities:
Keywords: Landau levels; cyclotron resonance; effective g-factor enhancement; electron correlation; graphene; h-BN; moiré potential; van der Waals junctions
Year: 2020 PMID: 32356662 DOI: 10.1021/acs.nanolett.0c01427
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189