Litcius/Paper detail

Fractional Quantum Hall Effect in Weyl Semimetals

Chong Wang, Lei Gioia, A. A. Burkov

2020Physical Review Letters36 citationsDOIOpen Access PDF

Abstract

Weyl semimetal may be thought of as a gapless topological phase protected by the chiral anomaly, where the symmetries involved in the anomaly are the U(1) charge conservation and the crystal translational symmetry. The absence of a band gap in a weakly interacting Weyl semimetal is mandated by the electronic structure topology and is guaranteed as long as the symmetries and the anomaly are intact. The nontrivial topology also manifests in the Fermi arc surface states and topological response, in particular taking the form of an anomalous Hall effect in magnetic Weyl semimetals, whose magnitude is only determined by the location of the Weyl nodes in the Brillouin zone. Here we consider the situation when the interactions are not weak and ask whether it is possible to open a gap in a magnetic Weyl semimetal while preserving its nontrivial electronic structure topology along with the translational and the charge conservation symmetries. Surprisingly, the answer turns out to be yes. The resulting topologically ordered state provides a nontrivial realization of the fractional quantum Hall effect in three spatial dimensions in the absence of an external magnetic field, which cannot be viewed as a stack of two dimensional states. Our state contains loop excitations with nontrivial braiding statistics when linked with lattice dislocations.

Topics & Concepts

Weyl semimetalPhysicsSemimetalTopology (electrical circuits)Charge conservationBrillouin zoneHomogeneous spaceCondensed matter physicsChiral anomalyTranslational symmetryQuantum anomalous Hall effectQuantum mechanicsQuantum Hall effectFermionCharge (physics)Magnetic fieldBand gapGeometryMathematicsCombinatoricsTopological Materials and PhenomenaGraphene research and applicationsQuantum and electron transport phenomena