English

Unconventional Spin Density Waves in Dipolar Fermi Gases

Quantum Gases 2013-04-25 v2 Superconductivity

Abstract

The conventional spin density wave (SDW) phase (Overhauser, 1962), as found in antiferromagnetic metal for example (Fawcett 1988), can be described as a condensate of particle-hole pairs with zero angular momentum, =0\ell=0, analogous to a condensate of particle-particle pairs in conventional superconductors. While many unconventional superconductors with Cooper pairs of finite \ell have been discovered, their counterparts, density waves with non-zero angular momenta, have only been hypothesized in two-dimensional electron systems (Nayak, 2000). Using an unbiased functional renormalization group analysis, we here show that spin-triplet particle-hole condensates with =1\ell=1 emerge generically in dipolar Fermi gases of atoms (Lu, Burdick, and Lev, 2012) or molecules (Ospelkaus et al., 2008; Wu et al.) on optical lattice. The order parameter of these exotic SDWs is a vector quantity in spin space, and, moreover, is defined on lattice bonds rather than on lattice sites. We determine the rich quantum phase diagram of dipolar fermions at half-filling as a function of the dipolar orientation, and discuss how these SDWs arise amidst competition with superfluid and charge density wave phases.

Keywords

Cite

@article{arxiv.1209.2671,
  title  = {Unconventional Spin Density Waves in Dipolar Fermi Gases},
  author = {S. G. Bhongale and L. Mathey and Shan-Wen Tsai and Charles W. Clark and Erhai Zhao},
  journal= {arXiv preprint arXiv:1209.2671},
  year   = {2013}
}

Comments

5 pages, 3 figures

R2 v1 2026-06-21T22:03:56.442Z