$p$-wave chiral superfluidity from an $s$-wave interacting atomic Fermi gas
Abstract
Chiral -wave superfluids are fascinating topological quantum states of matter that have been found in the liquid He-A phase and arguably in the electronic SrRuO superconductor. They are shown fundamentally related to the fractional quantum Hall state which supports fractional exotic excitations. A common understanding is that such states require spin-triplet pairing of fermions due to -wave interaction. Here we report by controlled theoretical approximation that a center-of-mass Wannier -wave chiral superfluid state can arise from spin-singlet pairing for an -wave interacting atomic Fermi gas in an optical lattice. Despite a conceptually different origin, it shows topological properties similar to the conventional chiral -wave state. These include a non-zero Chern number and the appearance of chiral fermionic zero modes bounded to domain walls. Several signature quantities are calculated for the cold atom experimental condition.
Cite
@article{arxiv.1402.5995,
title = {$p$-wave chiral superfluidity from an $s$-wave interacting atomic Fermi gas},
author = {Bo Liu and Xiaopeng Li and Biao Wu and W. Vincent Liu},
journal= {arXiv preprint arXiv:1402.5995},
year = {2014}
}
Comments
16 pages and 7 figures including supplementary materials