Bulk viscosity in strongly correlated Fermi gases arises from pair correlations and can be probed by time-dependent scattering length, with relaxation following a hydrodynamic attractor.
Emergence of Sound in a Tunable Fermi Fluid
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abstract
Landau's Fermi-liquid (FL) theory has been successful at the phenomenological description of the normal phase of many different Fermi systems. Using a dilute atomic Fermi fluid with tunable interactions, we investigate the microscopic basis of Landau's theory with a system describable from first principles. We study transport properties of an interacting Fermi gas by measuring its density response to a periodic external perturbation. In an ideal Fermi gas, we measure for the first time the celebrated Lindhard function. As the system is brought from the collisionless to the hydrodynamic regime, we observe the emergence of sound, and find that the experimental observations are quantitatively understood with a first-principle transport equation for the FL. When the system is more strongly interacting, we find deviations from such predictions. Finally, we observe the shape of the quasiparticle excitations directly from momentum-space tomography and see how it evolves from the collisionless to the collisional regime. Our study establishes this system as a clean platform for studying Landau's theory of the FL and paves the way for extending the theory to more exotic conditions, such as nonlinear dynamics and FLs with strong correlations in versatile settings.
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cond-mat.quant-gas 1years
2024 1verdicts
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Quantum transport in strongly correlated Fermi gases
Bulk viscosity in strongly correlated Fermi gases arises from pair correlations and can be probed by time-dependent scattering length, with relaxation following a hydrodynamic attractor.