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Topological nodal semimetals

Physical Review B · 2011 · Vol. 84(23)
A. A. BurkovMichael David HookLeon Balents

Abstract

We present a study of ``nodal-semimetal'' phases in which nondegenerate conduction and valence bands touch at points (the ``Weyl semimetal'') or lines (the ``line-node semimetal'') in three-dimensional momentum space. We discuss a general approach to such states by perturbation of the critical point between a normal insulator (NI) and a topological insulator (TI), breaking either time-reversal (TR) or inversion symmetry. We give an explicit model realization of both types of states in a NI-TI superlattice structure with broken TR symmetry. Both the Weyl and the line-node semimetals are characterized by topologically protected surface states, although in the line-node case, some additional symmetries must be imposed to retain this topological protection. The edge states have the form of ``Fermi arcs'' in the case of the Weyl semimetal: these are chiral gapless edge states, which exist in a finite region in momentum space, determined by the momentum-space separation of the bulk Weyl nodes. The chiral character of the edge states leads to a finite Hall conductivity. In contrast, the edge states of the line-node semimetal are ``flat bands'': these states are approximately dispersionless in a subset of the two-dimensional edge Brillouin zone, given by the projection of the line node onto the plane of the edge. We discuss unusual transport properties of the nodal semimetals and, in particular, point out quantum critical-like scaling of the dc and optical conductivities of the Weyl semimetal and similarities to the conductivity of graphene in the line-node case.

Topological Materials and PhenomenaGraphene research and applicationsQuantum Mechanics and Non-Hermitian PhysicsSemimetalWeyl semimetalPhysicsTopological insulatorPosition and momentum spaceCondensed matter physicsTopology (electrical circuits)Fermi levelQuantum mechanicsBand gap

Funding

  • National Science Foundation
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References
Topological Insulators in Three Dimensions
Physical Review Letters · 2007 · 4,579 citations
Absence of neutrinos on a lattice
Nuclear Physics B · 1981 · 1,629 citations
Topological invariants of time-reversal-invariant band structures
Physical Review B · 2007 · 2,323 citations
Topological insulators and superconductors
Reviews of Modern Physics · 2011 · 14,069 citations
Electronic properties of disordered two-dimensional carbon
Physical Review B · 2006 · 1,425 citations
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