arXiv · 1512.03972
Novel Topological Effects in Dense QCD in a Magnetic Field
Abstract
We study the electromagnetic properties of dense QCD in the so-called Magnetic Dual Chiral Density Wave phase. This inhomogeneous phase exhibits a nontrivial topology that comes from the fermion sector due to the asymmetry of the lowest Landau level modes. The nontrivial topology manifests in the electromagnetic effective action via a chiral anomaly term $~θF^{μν}\tilde{F}_{μν}$, with a dynamic axion field $θ$ given by the phase of the dual chiral density wave condensate. The coupling of the axion with the electromagnetic field leads to several macroscopic effects that include, among others, an anomalous, nondissipative Hall current, an anomalous electric charge, magnetoelectricity, and the formation of a hybridized propagating mode known as an axion polariton. Connection to topological insulators and Weyls semimetals, as well as possible implications for heavy-ion collisions and neutron stars are all highlighted.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
E. J. Ferrer, V. de la Incera. 2018-04-22. Novel Topological Effects in Dense QCD in a Magnetic Field. https://doi.org/10.1016/j.nuclphysb.2018.04.009
Cite the original work for its findings. Save a collection to share your selection of sources.