Migdal's theorem and electron-phonon vertex corrections in Dirac materials
arXiv:1401.5056 · doi:10.1103/PhysRevB.89.165119
Abstract
Migdal's theorem plays a central role in the physics of electron-phonon interactions in metals and semiconductors, and has been extensively studied theoretically for parabolic band electronic systems in three-, two-, and one-dimensional systems over the last fifty years. In the current work, we theoretically study the relevance of Migdal's theorem in graphene and Weyl semimetals which are examples of 2D and 3D Dirac materials, respectively, with linear and chiral band dispersion. Our work also applies to 2D and 3D topological insulator systems. In Fermi liquids, the renormalization of the electron-phonon vertex scales as the ratio of sound () to Fermi () velocity, which is typically a small quantity. In two- and three-dimensional quasirelativistic systems, such as undoped graphene and Weyl semimetals, the one loop electron-phonon vertex renormalization, which also scales as as , is, however, enhanced by an ultraviolet \emph{logarithmic divergent correction}, arising from the linear, chiral Dirac band dispersion. Such enhancement of the electron-phonon vertex can be significantly softened due to the logarithmic increment of the Fermi velocity, arising from the long range Coulomb interaction, and therefore, the electron-phonon vertex correction does not have a logarithmic divergence at low energy. Otherwise, the Coulomb interaction does not lead to any additional renormalization of the electron-phonon vertex. Therefore, electron-phonon vertex corrections in two- and three-dimensional Dirac fermionic systems scale as , where is the bare Fermi velocity, and small when . These results, although explicitly derived for the intrinsic undoped systems, should hold even when the chemical potential is tuned away from the Dirac points.
8 pages, 3 figures, Published version, with new figure, added discussion, typos corrected
References in corpus (9)
- Topological Insulators with Inversion Symmetry
- Discovery of a Three-dimensional Topological Dirac Semimetal, Na3Bi
- Topological Crystalline Insulators
- Acoustic phonon scattering limited carrier mobility in 2D extrinsic graphene
- Theory of interacting electrons on the honeycomb lattice
- Quantum critical point in graphene approached in the limit of infinitely strong Coulomb interaction
- Interplay of Coulomb and electron-phonon interactions in graphene
- Theory of a quantum critical phenomenon in a topological insulator: (3+1)-dimensional quantum electrodynamics in solids
- Velocity renormalization and anomalous quasiparticle dispersion in extrinsic graphene
Cited by in corpus (34)
- Topological Crystalline Insulators and Topological Superconductors: From Concepts to Materials
- Theory of phonon-mediated superconductivity in twisted bilayer graphene
- Fluctuation-induced quantum friction in nanoscale water flows
- Odd-parity topological superconductor with nematic order: Application to CuxBi2Se3
- Exceptional Topological Insulators
- Magnetic catalysis and axionic charge-density-wave in Weyl semimetals
- Theory for the Charge-Density-Wave Mechanism of 3D Quantum Hall Effect
- Quantum phases of interacting electrons in three-dimensional dirty Dirac semimetals
- Electronic Cooling in Weyl and Dirac Semimetals
- Amperean Pairing at the Surface of Topological Insulators
- Phonon renormalization in the Kitaev quantum spin liquid
- Random Phase Approximation for gapped systems: role of vertex corrections and applicability of the constrained random phase approximation
- Eliashberg study of superconductivity induced by interfacial coupling to antiferromagnets
- Many-body effects on superconductivity mediated by double-magnon processes in altermagnets
- Coulomb and electron-phonon interactions in metals
- Quantum oscillations in acoustic phonons in Weyl semimetals
- Wiedemann-Franz law in graphene
- Fermi-Bose mixture in mixed dimensions
- Strange metallicity of moiré twisted bilayer graphene
- Superconductivity in 2D electron gas induced by high energy optical phonon mode and large polarization of the STO substrate
- Nonperturbative Dyson-Schwinger equation approach to strongly interacting Dirac fermion systems
- Strong plasmon-phonon splitting and hybridization in 2D materials revealed through a self-energy approach
- Superconductivity from piezoelectric interactions in Weyl semimetals
- Dispersive Drumhead States in Nodal-Line Semimetal Junctions
- Exceeding the Chandrasekhar-Clogston limit in flat-band superconductors: A multiband strong-coupling approach
- Triplet superconductivity in 3D Dirac semimetal due to exchange interaction
- Electron-phonon vertex correction effect in superconducting H3S
- A non-perturbative study of the interplay between electron-phonon interaction and Coulomb interaction in undoped graphene
- Electron-mediated anharmonicity and its role in the Raman spectrum of graphene
- Dynamic dielectric function and phonon self-energy from electrons strongly correlated with acoustic phonons in 2D Dirac crystals
- Many-body fermionic excitations in Weyl semimetals due to elastic gauge fields
- Superconductivity induced by flexural modes in non -symmetric Dirac-like two-dimensional materials: A theoretical study for silicene and germanene
- Optical Response from Charge-Density Waves in Weyl Semimetals
- Mechanism for Nodal Topological Superconductivity on PtBi Surface