The fate of the Fermi surface coupled to a single-wave-vector cavity mode
arXiv:2505.11452 · doi:10.1103/t4xb-6x3z
Abstract
The electromagnetic field of standing-wave or ring cavities induces a spatially modulated, infinite-range interaction between atoms in an ultracold Fermi gas, with a single wavelength comparable to the Fermi length. This interaction has no analog in other systems of itinerant particles and has so far been studied only in the regime where it is attractive at zero distance. Here, we fully solve the problem of competing instabilities of the Fermi surface induced by single-wavelength interactions. We find that while the density-wave (superradiant) instability dominates on the attractive side, it is absent for repulsive interactions, where the competition is instead won by non-superradiant superfluid phases at low temperatures, with Fermion pairs forming at both vanishing and finite center-of-mass momentum. Moreover, even in the absence of such symmetry-breaking instabilities, we find the Fermi surface to be always nontrivially deformed from an isotropic shape. We estimate this full phenomenology to be within reach of dedicated state-of-the-art experimental setups.
Main text: 8 pages, 5 figures Supplementary material: 20 pages, 10 figures
References in corpus (14)
- Cold atoms in cavity-generated dynamical optical potentials
- The Equation of State of a Low-Temperature Fermi Gas with Tunable Interactions
- Cavity QED with Quantum Gases: New Paradigms in Many-Body Physics
- Cavity Quantum Materials
- Quantum Gases in Optical Boxes
- Phase space deformation of a trapped dipolar Fermi gas
- Observation of Fermi surface deformation in a dipolar quantum gas
- Quantum kinetics of ultracold fermions coupled to an optical resonator
- Density-wave ordering in a unitary Fermi gas with photon-mediated interactions
- Long-range photon fluctuations enhance photon-mediated electron pairing and superconductivity
- Cavity-Controlled Collective Scattering at the Recoil Limit
- Non-Fermi-Liquid Behavior from Cavity Electromagnetic Vacuum Fluctuations at the Superradiant Transition
- Direct production of fermionic superfluids in a cavity-enhanced optical dipole trap
- Design and assembly of a cavity microscope with high numerical aperture for quantum simulations