Effective theory of vortices in two-dimensional spinless chiral $p$-wave superfluids
Abstract
We propose a effective gauge theory for vortices in a superfluid in two dimensions. The combined gauge transformation binds and defects so that the total transformation remains single-valued and manifestly preserves the the particle-hole symmetry of the action. The gauge field introduces a complete Chern-Simons term in addition to a partial one associated with the gauge field. The theory reproduces the known physics of vortex dynamics such as a Magnus force proportional to the superfluid density. More importantly, it predicts a universal Abelian phase, , upon the exchange of two vortices. This phase is modified by non-universal corrections due to the partial Chern-Simon term, which are nevertheless screened in a charged superfluid at distances that are larger than the penetration depth.
Keywords
Cite
@article{arxiv.1407.2553,
title = {Effective theory of vortices in two-dimensional spinless chiral $p$-wave superfluids},
author = {Daniel Ariad and Babak Seradjeh and Eytan Grosfeld},
journal= {arXiv preprint arXiv:1407.2553},
year = {2015}
}
Comments
8 pages, 3 figures, version published in PRB