Detecting $\pi$-phase superfluids with $p$-wave symmetry in a quasi-1D optical lattice
Abstract
We propose an experimental protocol to study -wave superfluidity in a spin-polarized cold Fermi gas tuned by an -wave Feshbach resonance. A crucial ingredient is to add a quasi-1D optical lattice and tune the fillings of two spins to the and band, respectively. The pairing order parameter is confirmed to inherit -wave symmetry in its center-of-mass motion. We find that it can further develop into a state of unexpected -phase modulation in a broad parameter regime. Measurable quantities are calculated, including time-of-flight distributions, radio-frequency spectra, and in situ phase-contrast imaging in an external trap. The -phase -wave superfluid is reminiscent of the -state in superconductor-ferromagnet heterostructures but differs in symmetry and origin. If observed, it would represent another example of -wave pairing, first discovered in He-3 liquids.
Keywords
Cite
@article{arxiv.1505.08164,
title = {Detecting $\pi$-phase superfluids with $p$-wave symmetry in a quasi-1D optical lattice},
author = {Bo Liu and Xiaopeng Li and Randall G. Hulet and W. Vincent Liu},
journal= {arXiv preprint arXiv:1505.08164},
year = {2016}
}
Comments
5 pages, 5 figures