Linear response of a superfluid Fermi gas inside its pair-breaking continuum
arXiv:1912.08898
Abstract
We study the signatures of the collective modes of a superfluid Fermi gas in its linear response functions for the order-parameter and density fluctuations in the Random Phase Approximation (RPA). We show that a resonance associated to the Popov-Andrianov (or sometimes "Higgs") mode is visible inside the pair-breaking continuum at all values of the wavevector , not only in the (order-parameter) modulus-modulus response function but also in the modulus-density and density-density responses. At nonzero temperature, the resonance survives in the presence of thermally broken pairs even until the vicinity of the critical temperature , and coexists with both the Anderson-Bogoliubov modes at temperatures comparable to the gap and with the low-velocity phononic mode predicted by RPA near . The existence of a Popov-Andrianov-"Higgs" resonance is thus a robust, generic feature of the high-energy phenomenology of pair-condensed Fermi gases, and should be accessible to state-of-the-art cold atom experiments.
23 pages, 7 figures
References in corpus (8)
- Vortices and Superfluidity in a Strongly Interacting Fermi Gas
- Observation of Bose-Einstein Condensation of Molecules
- Amplitude / Higgs Modes in Condensed Matter Physics
- Determination of the Superfluid Gap in Atomic Fermi Gases by Quasiparticle Spectroscopy
- Goldstone mode and pair-breaking excitations in atomic Fermi superfluids
- Higgs mode in a strongly interacting fermionic superfluid
- Nonequilibrium dynamics of weakly and strongly paired superconductors
- A long-lived Higgs mode in a two-dimensional confined Fermi gas