Higgs Mechanism, Phase Transitions, and Anomalous Hall Effect in Three-Dimensional Topological Superconductors
Flavio S. Nogueira, Asle Sudbo, and Ilya Eremin

TL;DR
This paper explores the unique Higgs mechanism in three-dimensional topological superconductors, revealing observable effects like anomalous Hall currents and distinct phase transition behaviors due to axion-like terms.
Contribution
It introduces a model with two superconducting components and an axion-like term, showing how quantum fluctuations stabilize a topologically non-trivial state and predicting novel phase transition phenomena.
Findings
Robust topologically non-trivial state persists with interactions.
First-order bulk and second-order surface phase transitions.
Induction of a non-dissipative anomalous Hall effect without vortices.
Abstract
We demonstrate that the Higgs mechanism in three-dimensional topological superconductors exhibits unique features with experimentally observable consequences. The Higgs model we discuss has two superconducting components and an axion-like magnetoelectric term with the phase difference of the superconducting order parameters playing the role of the axion field. Due to this additional term, quantum electromagnetic and phase fluctuations lead to a robust topologically non-trivial state that holds also in the presence of interactions. In this sense, we show that the renormalization flow of the topologically nontrivial phase cannot be continuously deformed into a topologically non-trivial one. One consequence of our analysis of quantum critical fluctuations, is the possibility of having a first-order phase transition in the bulk and a second-order phase transition on the surface. We also…
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