High Surface Conductivity of Fermi Arc Electrons in Weyl semimetals
arXiv:1708.02415 · doi:10.1103/PhysRevB.97.085142
Abstract
Weyl semimetals (WSMs), a new type of topological condensed matter, are currently attracting great interest due to their unusual electronic states and intriguing transport properties such as chiral anomaly induced negative magnetoresistance, a semi--quantized anomalous Hall effect and the debated chiral magnetic effect. These systems are close cousins of topological insulators (TIs) which are known for their disorder tolerant surface states. Similarly, WSMs exhibit unique topologically protected Fermi arcs surface states. Here we analyze electron--phonon scattering, a primary source of resistivity in metals at finite temperatures, as a function of the shape of the Fermi arc where we find that the impact on surface transport is significantly dependent on the arc curvature and disappears in the limit of a straight arc. Next, we discuss the effect of strong surface disorder on the resistivity by numerically simulating a tight binding model with the presence of quenched surface vacancies using the Coherent Potential Approximation (CPA) and Kubo--Greenwood formalism. We find that the limit of a straight arc geometry is remarkably disorder tolerant, producing surface conductivity that is a factor of 50 larger of a comparable set up with surface states of TI. Finally, a simulation of the effects of surface vacancies on TaAs is presented, illustrating the disorder tolerance of the topological surface states in a recently discovered WSM material.
16 pages, 10 figures
References in corpus (12)
- Weyl and Dirac Semimetals in Three Dimensional Solids
- Dielectric function, screening, and plasmons in 2D graphene
- Controlling electron-phonon interactions in graphene at ultra high carrier densities
- Bulk Band Gap and Surface State Conduction Observed in Voltage-Tuned Crystals of the Topological Insulator BiSe
- Rapid Surface Oxidation as a Source of Surface Degradation Factor for Bi2Se3
- Topological delocalization of two-dimensional massless Dirac fermions
- Rare region effects dominate weakly disordered 3D Dirac points
- Topological Weyl Semi-metal from a Lattice Model
- The fate of topological-insulator surface states under strong disorder
- Optical signature of Weyl electronic structures in tantalum pnictides Ta ( P, As)
- Stability of Weyl metals under impurity scattering
- Magnetic Purcell effect in nanophotonics
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