Quantum Hall Effect in Bernal Stacked and Twisted Bilayer Graphene Grown on Cu by Chemical Vapor Deposition
arXiv:1202.2930 · doi:10.1103/PhysRevB.85.201408
Abstract
We examine the quantum Hall effect in bilayer graphene grown on Cu substrates by chemical vapor deposition. Spatially resolved Raman spectroscopy suggests a mixture of Bernal (A-B) stacked and rotationally faulted (twisted) domains. Magnetotransport measurements performed on bilayer domains with a wide 2D band reveal quantum Hall states (QHSs) at filling factors consistent with a Bernal stacked bilayer, while magnetotransport measurements in bilayer domains defined by a narrow 2D band show a superposition of QHSs of two independent monolayers. The analysis of the Shubnikov-de Haas oscillations measured in twisted graphene bilayers provides the carrier density in each layer as a function of the gate bias and the inter-layer capacitance.
5 pages, 4 figures
References in corpus (12)
- The Raman Fingerprint of Graphene
- Biased bilayer graphene: semiconductor with a gap tunable by electric field effect
- Unconventional quantum Hall effect and Berry's phase of 2pi in bilayer graphene
- Gate-induced insulating state in bilayer graphene devices
- Raman Fingerprint of Charged Impurities in Graphene
- Ab Initio Theory of Gate Induced Gaps in Graphene Bilayers
- Wafer Scale Homogeneous Bilayer Graphene Films by Chemical Vapor Deposition
- Quantum Hall Effect, Screening and Layer-Polarized Insulating States in Twisted Bilayer Graphene
- Boltzmann transport and residual conductivity in bilayer graphene
- Tunable Graphene System with Two Decoupled Monolayers
- Magnetotransport Properties of Quasi-Free Standing Epitaxial Graphene Bilayer on SiC: Evidence for Bernal Stacking
- Quantum Hall activation gaps in bilayer graphene
Cited by in corpus (20)
- Unravelling the intrinsic and robust nature of van Hove singularities in twisted bilayer graphene
- Electronic properties of graphene-based bilayer systems
- Probing the Electron States and Metal-Insulator Transition Mechanisms in Atomically Thin MoS2 Based on Vertical Heterostructures
- Realization of a Tunable Artificial Atom at a Supercritically Charged Vacancy in Graphene
- Superlattice structures in twisted bilayers of folded graphene
- Transport measurements in twisted bilayer graphene: Electron-phonon coupling and Landau level crossing
- Out-of-plane dielectric susceptibility of graphene in twistronic and Bernal bilayers
- Minibands in twisted bilayer graphene probed by magnetic focusing
- Strong interminivalley scattering in twisted bilayer graphene revealed by high-temperature magnetooscillations
- Berry Phase Transition in Twisted Bilayer Graphene
- Stacking-enriched magneto-transport properties of few-layer graphenes
- Generalized Peierls substitution for the tight-binding model of twisted multilayer graphene in a magnetic field
- Quantum capacitive coupling between large-angle twisted graphene layers
- Broken-Symmetry Quantum Hall States in Twisted Bilayer Graphene
- Ising quantum Hall ferromagnetism in Landau levels of bilayer graphene
- Realization and transport investigation of a single layer-twisted bilayer graphene junction
- Interference effects in polarization controlled Rayleigh scattering in twisted bilayer graphene
- Skyrmionic Transport and First Order Phase Transitions in Twisted Bilayer Graphene Quantum Hall Ferromagnet
- Magneto-electronic properties of twisted bilayer graphene system
- Electronic Reconstruction at the Quasicrystal-Moiré Crossover in Twisted Bilayer Graphene