$f$-wave superfluidity from repulsive interaction in Rydberg-dressed Fermi gas
Abstract
Interacting Fermi gas provides an ideal model system to understand unconventional pairing and intertwined orders relevant to a large class of quantum materials. Rydberg-dressed Fermi gas is a recent experimental system where the sign, strength, and range of the interaction can be controlled. The interaction in momentum space has a negative minimum at inversely proportional to the characteristic length-scale in real space, the soft-core radius . We show theoretically that single-component (spinless) Rydberg-dressed Fermi gas in two dimensions has a rich phase diagram with novel superfluid and density wave orders due to the interplay of the Fermi momentum , interaction range , and interaction strength . For repulsive bare interactions , the dominant instability is -wave superfluid for , and density wave for . The -wave pairing in this repulsive Fermi gas is reminiscent of the conventional Kohn-Luttinger mechanism, but has a much higher . For attractive bare interactions , the leading instability is -wave pairing. The phase diagram is obtained from functional renormalization group that treats all competing many-body instabilities in the particle-particle and particle-hole channels on equal footing.
Cite
@article{arxiv.1906.04235,
title = {$f$-wave superfluidity from repulsive interaction in Rydberg-dressed Fermi gas},
author = {Ahmet Keles and Erhai Zhao and Xiaopeng Li},
journal= {arXiv preprint arXiv:1906.04235},
year = {2020}
}
Comments
6 pages with 2 figures and references