Effective field theory, three-loop perturbative expansion, and their experimental implications in graphene many-body effects
arXiv:1401.7011 · doi:10.1103/PhysRevB.89.235431
Abstract
Many-body electron-electron interaction effects are theoretically considered in monolayer graphene from a continuum effective field-theoretic perspective by going beyond the standard leading-order perturbative renormalization group (RG) analysis. Given that the bare fine structure constant in graphene is of order unity, which is neither small to justify a perturbative expansion nor large enough for strong-coupling theories to be applicable, the problem is a difficult one, with some similarity to 2+1-dimensional strong-coupling quantum electrodynamics (QED). In this work, we take a systematic and comprehensive analytical approach, working primarily at the Dirac point (intrinsic graphene), by going up to three loops in the diagrammatic expansion to both ascertain the validity of perturbation theory and to estimate quantitatively higher-order renormalization effects. While no direct signatures for non-Fermi liquid behavior at the Dirac point have yet been observed experimentally, there is ample evidence for the interaction-induced renormalization of the graphene velocity as the carrier density approaches zero. We provide a critical comparison between theory and experiment, using both bare- and screened-interaction (RPA) calculations. We find that while the one-loop RG analysis gives reasonable agreement with the experimental data, especially when screening and finite-density effects are included through the RPA, the two-loop analysis reveals a strong-coupling critical point in suspended graphene, signifying either a quantum phase transition or a breakdown of the weak-coupling RG approach. We show that the latter is more likely by adapting Dyson's argument for the breakdown of perturbative QED to the case of graphene. We propose future experiments and theoretical directions to make further progress on this important and difficult problem.
60 pages, 28 figures, PRB version
References in corpus (36)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- Universal Dynamic Conductivity and Quantized Visible Opacity of Suspended Graphene
- Measurement of the Optical Conductivity of Graphene
- Dielectric function, screening, and plasmons in 2D graphene
- Carrier transport in 2D graphene layers
- A self-consistent theory for graphene transport
- Scanning Tunneling Spectroscopy of Graphene on Graphite
- Interactions and phase transitions on graphene's honeycomb lattice
- Multi-Component Quantum Gases in Spin-Dependent Hexagonal Lattices
- Is graphene in vacuum an insulator?
- Interaction phenomena in graphene seen through quantum capacitance
- The Role of Electron-electron Interactions in Graphene ARPES Spectra
- Screening induced temperature dependent transport in 2D graphene
- Quantum critical point in graphene approached in the limit of infinitely strong Coulomb interaction
- Many-body interactions in quasi-freestanding graphene
- Chirality and Correlations in Graphene
- Lattice field theory simulations of graphene
- Effect of electron-electron interactions on the conductivity of clean graphene
- Inelastic carrier lifetime in graphene
- Graphene via large N I: Renormalization
- The quasiparticle spectral function in doped graphene
- Graphene: A Pseudochiral Fermi Liquid
- Interaction corrections to the polarization function of graphene
- Density dependent exchange contribution to in extrinsic graphene
- Anomalous thermodynamics of Coulomb interacting massless Dirac fermions in two spatial dimensions
- Renormalization group approach to 2D Coulomb interacting Dirac fermions with random gauge potential
- Charge-Carrier Screening in Single-Layer Graphene
- Electron-Electron Interactions in the Vacuum Polarization of Graphene
- Renormalization group flow of quartic perturbations in graphene: Strong coupling and large-N limits
- Density dependent spin susceptibility and effective mass in interacting quasi-two dimensional electron systems
- Velocity renormalization and anomalous quasiparticle dispersion in extrinsic graphene
- Lattice gauge theory model for graphene
- Temperature dependent effective mass renormalization in a Coulomb Fermi liquid
- Chirality-induced Dynamic Kohn Anomalies in Graphene
- Many-body exchange-correlation effects in graphene
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- Hydrodynamics of electrons in graphene
- Towards the hidden symmetry in Coulomb interacting twisted bilayer graphene: renormalization group approach
- The role of electron-electron interactions in two-dimensional Dirac fermions
- Interacting Electrons in Graphene: Fermi Velocity Renormalization and Optical Response
- Emergent non-Fermi liquid at the quantum critical point of a topological phase transition in two dimensions
- Why does graphene behave as a weakly interacting system?
- Electronic sound modes and plasmons in hydrodynamic two-dimensional metals
- Quantum phases of interacting electrons in three-dimensional dirty Dirac semimetals
- Many-body effects and ultraviolet renormalization in three-dimensional Dirac materials
- Chiral Symmetry Breaking and the Quantum Hall Effect in Monolayer Graphene
- New quantum critical points of Dirac electrons in antiperovskite topological crystalline insulators
- Time-domain quantum interference in graphene
- Effects of the Dirac cone tilt in two-dimensional Dirac semimetal
- Spin g-factor due to electronic interactions in graphene
- Dynamically screened vertex correction to
- Electron-phonon and electron-electron interaction effects in twisted bilayer graphene
- Field theoretic renormalization study of reduced quantum electrodynamics and applications to the ultra-relativistic limit of Dirac liquids
- Wiedemann-Franz law in graphene
- Multilogarithmic velocity renormalization in graphene
- Collective effects in tilted Weyl cones: optical conductivity, polarization, and Coulomb interactions reshaping the cone
- Non-perturbative renormalization group calculation of the quasi-particle velocity and the dielectric function of graphene
- Stress tensor and current correlators of interacting conformal field theories in 2+1 dimensions: Fermionic Dirac matter coupled to U(1) gauge field
- Quantum capacitance and compressibility of graphene: The role of Coulomb interactions
- Plasmon-pole approximation for many-body-effects in extrinsic graphene
- Interplay between the edge-state magnetism and long-range Coulomb interaction in zigzag graphene nanoribbons: quantum Monte Carlo study
- Surprises in the t-J model: Implications for cuprates
- The effect of vertex corrections on the possibility of chiral symmetry breaking, induced by long-range Coulomb repulsion in graphene
- Screening properties and plasmons of Hg(Cd)Te quantum wells
- Nonlocal electrodynamics in Weyl semi-metals
- Nonperturbative Dyson-Schwinger equation approach to strongly interacting Dirac fermion systems
- Field theoretic study of electron-electron interaction effects in Dirac liquids
- Interacting Dirac Materials
- Temperature-dependent many-body effects in Dirac-Weyl materials: Interacting compressibility and quasiparticle velocity
- Many-body effects in nodal-line semimetals: correction to the optical conductivity
- Effects of the two-dimensional Coulomb interaction in both Fermi velocity and energy gap for Dirac-like electrons at finite temperature
- Landau poles in condensed matter systems
- Many-body perturbation theory for moiré systems
- Keldysh functional renormalization group for electronic properties of graphene
- Optimal number of terms in QED series and its consequence in condensed matter implementations of QED
- Photoexcitation Cascade and Quantum-Relativistic Jets in Graphene
- Photon emission in the graphene under the action of a quasiconstant external electric field
- A non-perturbative study of the interplay between electron-phonon interaction and Coulomb interaction in undoped graphene
- Non-perturbative corrections to the quasiparticle velocity in graphene
- Bridging the gap between numerics and experiment in free standing graphene
- Soft pair excitations and double-log divergences due to carrier interactions in graphene
- Perturbative renormalization group approach to magic-angle twisted bilayer graphene using topological heavy fermion model
- Bosonization of the continuum of Dirac Fermions
- Effective Fermion Mass in Relativistic and Non-Relativistic Systems