Do the surface Fermi arcs in Weyl semimetals survive disorder?
arXiv:1801.05438 · doi:10.1103/PhysRevB.97.235108
Abstract
We theoretically study the topological robustness of the surface physics induced by Weyl Fermi-arc surface states in the presence of short-ranged quenched disorder and surface-bulk hybridization. This is investigated with numerically exact calculations on a lattice model exhibiting Weyl Fermi-arcs. We find that the Fermi-arc surface states, in addition to having a finite lifetime from disorder broadening, hybridize with nonperturbative bulk rare states making them no longer bound to the surface (i.e. they lose their purely surface spectral character). Thus, we provide strong numerical evidence that the Weyl Fermi-arcs are not topologically protected from disorder. Nonetheless, the surface chiral velocity is robust and survives in the presence of strong disorder, persisting all the way to the Anderson-localized phase by forming localized current loops that live within the localization length of the surface. Thus, the Weyl semimetal is not topologically robust to the presence of disorder, but the surface chiral velocity is.
Single column; 24 pages, 12 figures
References in corpus (12)
- Non-Abelian Anyons and Topological Quantum Computation
- Quantum Spin Hall Insulator State in HgTe Quantum Wells
- Superconducting proximity effect and Majorana fermions at the surface of a topological insulator
- Weyl and Dirac Semimetals in Three Dimensional Solids
- Weyl semimetal phase in non-centrosymmetric transition metal monophosphides
- The Kernel Polynomial Method
- Evidence for Magnetic Weyl Fermions in a Correlated Metal
- Rare region effects dominate weakly disordered 3D Dirac points
- Effective field theory of the disordered Weyl semimetal
- Electronic properties of disordered Weyl semimetals at charge neutrality
- The theory of avoided criticality in quantum motion in a random potential in high dimensions
- Disordered topological metals
Cited by in corpus (35)
- Transport in two-dimensional topological materials: recent developments in experiment and theory
- Localized spin-orbit polaron in magnetic Weyl semimetal CoSnS
- A moiré superlattice on the surface of a topological insulator
- Rare regions and avoided quantum criticality in disordered Weyl semimetals and superconductors
- Nodal points of Weyl semimetals survive the presence of moderate disorder
- Transport, refraction and interface arcs in junctions of Weyl semimetals
- Euler Obstructed Cooper Pairing: Nodal Superconductivity and Hinge Majorana Zero Modes
- Infinite Berry Curvature of Weyl Fermi Arcs
- Fermi arc reconstruction at the interface of twisted Weyl semimetals
- Disorder driven multifractality transition in Weyl nodal loops
- Avoided quantum criticality in exact numerical simulations of a single disordered Weyl cone
- Surface-dominated conductance scaling in Weyl semimetal NbAs
- Disordered fermionic quantum critical points
- Hydrodynamics of Fermi arcs: Bulk flow and surface collective modes
- Phonon-limited Transport and Fermi Arc Lifetime in Weyl Semimetals
- Fermi arcs and DC transport in nanowires of Dirac and Weyl semimetals
- Multifractality at the Weyl semimetal-diffusive metal transition for generic disorder
- Fermi arcs and surface criticality in dirty Dirac materials
- Topological Anomalous Skin Effect in Weyl Superconductors
- Pushing the limit of quantum transport simulations
- Gapped Dirac semimetal with mixed linear and parabolic dispersions
- Disorder effects on triple-point fermions
- Ballistic transport in disordered Dirac and Weyl semimetals
- Floquet chiral hinge modes and their interplay with Weyl physics in a three-dimensional lattice
- Surface quantum critical phenomena in disordered Dirac semimetals
- Delocalization of topological surface states by diagonal disorder in nodal loop semimetals
- Anomalous Surface Conductivity of Weyl Semimetals
- Chiral anomaly without Landau levels: From the quantum to the classical regime
- Noncentrosymmetric two-dimensional Weyl semimetals in porous Si/Ge structures
- Direct topological insulator transitions in three dimensions are destabilized by non-perturbative effects of disorder
- Disorder Driven Non-Anderson Transition in a Weyl Semimetal
- Quantum Fractality on the Surface of Topological Insulators
- Magnetotransport across Weyl semimetal grain boundaries
- Mesoscale variations of chemical and electronic landscape on the surface of Weyl semimetal CoSnS visualized by ARPES and XPS
- Accelerated Discovery of Topological Conductors for Nanoscale Interconnects