Itinerant ferromagnetism in 1D two-component Fermi gases
arXiv:1512.01392 · doi:10.1103/PhysRevA.94.011601
Abstract
We study a one-dimensional two-component atomic Fermi gas with an infinite intercomponent contact repulsion. It is found that adding an attractive resonant odd-wave interaction breaking the rotational symmetry one can make the ground state ferromagnetic. A promising system for the observation of this itinerant ferromagnetic state is a 1D gas of K atoms, where 3D -wave and -wave Feshbach resonances are very close to each other and the 1D confinement significantly reduces the inelastic decay.
5 pages, 2 figures, with 6 pages supplemental material
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Cited by in corpus (18)
- Universal One-dimensional Atomic Gases Near Odd-wave Resonance
- Two-body relaxation of spin-polarized fermions in reduced dimensionalities near a p-wave Feshbach resonance
- Probing open- and closed-channel p-wave resonances
- Quantum Monte Carlo simulations of two-dimensional repulsive Fermi gases with population imbalance
- In Situ Thermometry of Fermionic Cold-Atom Quantum Wires
- Universal Feature in Optical Control of a p-wave Feshbach Resonance
- Majorana edge state in a number-conserving Fermi gas with tunable p-wave interaction
- Itinerant ferromagnetism of two-dimensional repulsive fermions with Rabi coupling
- Fermionic quantum carpets: From canals and ridges to solitonlike structures
- Universal relations for hybridized - and -wave interactions from spin-orbital coupling
- Universal relations and normal-state properties of a Fermi gas with laser-dressed mixed-partial-wave interactions
- Exchange interactions in the Hubbard-Stratonovich transformation for the stability analysis of itinerant ferromagnetism
- Polarization in a three-dimensional Fermi gas with Rabi coupling
- Collective P-Wave Orbital Dynamics of Ultracold Fermions
- One-dimensional two-component fermions with contact even-wave repulsion and SU(2) breaking near-resonant odd-wave attraction
- Itinerant ferromagnetism in the repulsive Hubbard chain with anisotropic odd-wave attraction
- Resonance-facilitated three-channel p-wave scattering
- Strongly Repulsive 1D Gases at Higher Branches: Spin-Charge Correlation and Coupled Spin-Chain Model