English

Conformality loss and quantum criticality in topological Higgs electrodynamics in 2+1 dimensions

Strongly Correlated Electrons 2019-10-17 v2 High Energy Physics - Theory

Abstract

The electromagnetic response of topological insulators and superconductors is governed by a modified set of Maxwell equations that derive from a topological Chern-Simons (CS) term in the effective Lagrangian with coupling constant κ\kappa. Here we consider a topological superconductor or, equivalently, an Abelian Higgs model in 2+12+1 dimensions with a global O(2N)O(2N) symmetry in the presence of a CS term, but without a Maxwell term. At large κ\kappa, the gauge field decouples from the complex scalar field, leading to a quantum critical behavior in the O(2N)O(2N) universality class. When the Higgs field is massive, the universality class is still governed by the O(2N)O(2N) fixed point. However, we show that the massless theory belongs to a completely different universality class, exhibiting an exotic critical behavior beyond the Landau-Ginzburg-Wilson paradigm. For finite κ\kappa above a certain critical value κc\kappa_c, a quantum critical behavior with continuously varying critical exponents arises. However, as a function κ\kappa a transition takes place for κ<κc|\kappa| < \kappa_c where conformality is lost. Strongly modified scaling relations ensue. For instance, in the case where κ2>κc2\kappa^2>\kappa_c^2, leading to the existence of a conformal fixed point, critical exponents are a function of κ\kappa.

Keywords

Cite

@article{arxiv.1907.00613,
  title  = {Conformality loss and quantum criticality in topological Higgs electrodynamics in 2+1 dimensions},
  author = {Flavio S. Nogueira and Jeroen van den Brink and Asle Sudbo},
  journal= {arXiv preprint arXiv:1907.00613},
  year   = {2019}
}

Comments

9 pages, 3 figures. v2: extended version, added references. Version as published