Interaction driven metal-insulator transition in strained graphene
arXiv:1505.04188 · doi:10.1103/PhysRevLett.115.186602
Abstract
The question of whether electron-electron interactions can drive a metal to insulator transition in graphene under realistic experimental conditions is addressed. Using three representative methods to calculate the effective long-range Coulomb interaction between -electrons in graphene and solving for the ground state using quantum Monte Carlo methods, we argue that without strain, graphene remains metallic and changing the substrate from SiO to suspended samples hardly makes any difference. In contrast, applying a rather large -- but experimentally realistic -- uniform and isotropic strain of about seems to be a promising route to making graphene an antiferromagnetic Mott insulator.
Updated version: 6 pages, 3 figures
References in corpus (29)
- The electronic properties of graphene
- Energy Band Gap Engineering of Graphene Nanoribbons
- Control of graphene's properties by reversible hydrogenation
- Electronic transport in two dimensional graphene
- Massive Dirac fermions and Hofstadter butterfly in a van der Waals heterostructure
- A tight-binding approach to uniaxial strain in graphene
- A self-consistent theory for graphene transport
- Electron-Electron Interactions in Graphene: Current Status and Perspectives
- Tunable metal-insulator transition in double-layer graphene heterostructures
- Strength of effective Coulomb interactions in graphene and graphite
- Interactions and phase transitions on graphene's honeycomb lattice
- Calculations of Hubbard U from first-principles
- Magnetism in Disordered Graphene and Irradiated Graphite
- Tuning the effective fine structure constant in graphene: opposing effects of dielectric screening on short- and long-range potential scattering
- Origin of band gaps in graphene on hexagonal boron nitride
- Absence of a Spin Liquid Phase in the Hubbard Model on the Honeycomb Lattice
- Is graphene in vacuum an insulator?
- Pinning the order: the nature of quantum criticality in the Hubbard model on honeycomb lattice
- Optimal Hubbard models for materials with nonlocal Coulomb interactions: graphene, silicene and benzene
- Fermionic quantum criticality in honeycomb and -flux Hubbard models: Finite-size scaling of renormalization-group-invariant observables from quantum Monte Carlo
- Monte-Carlo study of the semimetal-insulator phase transition in monolayer graphene with realistic inter-electron interaction potential
- Electron-Electron Interactions on the Edge States of Graphene: A Many Body Configuration Interaction Study
- Low-energy models for correlated materials: bandwidth renormalization from Coulombic screening
- Phase diagram of the Kane-Mele-Coulomb model
- Mechanism for puddle formation in graphene
- Disorder by order in graphene
- Many body renormalization of the minimal conductivity in graphene
- Enhancement of non-local exchange near isolated band-crossings in graphene
- Semimetal-antiferromagnetic insulator transition in graphene induced by biaxial strain
Cited by in corpus (44)
- Hydrodynamics of electrons in graphene
- Four-loop critical exponents for the Gross-Neveu-Yukawa models
- The role of electron-electron interactions in two-dimensional Dirac fermions
- Room temperature magnetism on the zigzag edges of phosphorene nanoribbons
- The ALF (Algorithms for Lattice Fermions) project release 1.0. Documentation for the auxiliary field quantum Monte Carlo code
- Hybrid-Monte-Carlo study of competing order in the extended fermionic Hubbard model on the hexagonal lattice
- The Semimetal-Mott Insulator Quantum Phase Transition of the Hubbard Model on the Honeycomb Lattice
- Spin-fluctuation-induced pairing in twisted bilayer graphene
- Correlation-Driven Dimerization and Topological Gap Opening in Isotropically Strained Graphene
- First-principles-based method for electron localization: Application to monolayer hexagonal boron nitride
- Stopping dynamics of ions passing through correlated honeycomb clusters
- Competition of density waves and quantum multicritical behavior in Dirac materials from functional renormalization
- Competing electronic instabilities of extended Hubbard models on the honeycomb lattice: A functional Renormalization Group calculation with high wavevector resolution
- Quantum Monte Carlo Calculations for Carbon Nanotubes
- Inherited and flatband-induced ordering in twisted graphene bilayers
- Numerical evidence of conformal phase transition in graphene with long-range interactions
- Antiferromagnetism and competing charge instabilities of electrons in strained graphene from Coulomb interactions
- Magnetism and charge order in the honeycomb lattice
- Low-energy theory for strained graphene: an approach up to second-order in the strain tensor
- Spontaneous antiferromagnetic order and strain effect on electronic properties of -graphyne
- Avoiding Ergodicity Problems in Lattice Discretizations of the Hubbard Model
- Chiral tricritical point: a new universality class in Dirac systems
- Excitonic mass gap in uniaxially strained graphene
- Effective magnetic field induced by inhomogeneous Fermi velocity in strained honeycomb structures
- Interplay between the edge-state magnetism and long-range Coulomb interaction in zigzag graphene nanoribbons: quantum Monte Carlo study
- Fingerprints of a position-dependent Fermi velocity on scanning tunnelling spectra of strained graphene
- Dynamical gap generation in 2D Dirac semimetal with deformed Dirac cone
- Antiferromagnetism and chiral d-wave superconductivity from an effective model for twisted bilayer graphene
- Fermi-liquid ground state of interacting Dirac fermions in two dimensions
- Applications of lattice QCD techniques for condensed matter systems
- A Hybrid-Monte-Carlo study of monolayer graphene with partially screened Coulomb interactions at finite spin density
- Benchmark study of an auxiliary-field quantum Monte Carlo technique for the Hubbard model with shifted-discrete Hubbard-Stratonovich transformations
- The effect of anisotropy on phase transitions in graphene
- Mott transition in the Hubbard model on anisotropic honeycomb lattice with implications for strained graphene: Gutzwiller variational study
- The ALF (Algorithms for Lattice Fermions) project release 2.4. Documentation for the auxiliary-field quantum Monte Carlo code
- Robustness of the semimetal state of Na3Bi and Cd3As2 against Coulomb interaction
- The extended Hubbard model on a honeycomb lattice
- Kekulé valence bond order in the Hubbard model on the honeycomb lattice with possible lattice distortions for graphene
- Metal-Insulator transition in strained Graphene: A quantum Monte carlo study
- Quantum critical phenomena of the excitonic insulating transition in two dimensions
- Magnetic ordering tendencies in hexagonal boron nitride-bilayer graphene moiré structures
- Competing order in the fermionic Hubbard model on the hexagonal graphene lattice
- Quantum transport of Dirac fermions in selected graphene nanosystems away from the charge-neutrality point
- The Hubbard Model on the Honeycomb Lattice with Hybrid Monte Carlo