DC Josephson Effect with Fermi gases in the Bose-Einstein regime
arXiv:0808.0409 · doi:10.1103/PhysRevA.79.033627
Abstract
We show that the DC Josephson effect with ultracold fermionic gases in the BEC regime of composite molecules can be described by a nonlinear Schrodinger equation (NLSE). By comparing our results with Bogoliubov-de Gennes calculations [Phys. Rev. Lett. 99, 040401 (2007)] we find that our superfluid NLSE, which generalizes the Gross-Pitaevskii equation taking into account the correct equation of state, is reliable in the BEC regime of the BCS-BEC crossover up to the limit of very large (positive) scattering length. We also predict that the Josephson current displays relevant beyond mean-field effects.
9 pages, 6 figures. In the new version added one figure and some paragraphs
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Cited by in corpus (12)
- Critical velocity of superfluid flow through single barrier and periodic potentials
- Josephson plasma oscillations and the Gross-Pitaevskii equation: Bogoliubov approach vs two-mode model
- Shock waves in strongly interacting Fermi gas from time-dependent density functional calculations
- Low-temperature thermodynamics of the unitary Fermi gas: superfluid fraction, first sound and second sound
- Dynamical properties of the unitary Fermi gas: collective modes and shock waves
- Josephson effect as signature of electron-hole superfluidity in bilayers of van der Waals heterostructures
- Spin-asymmetric Josephson plasma oscillations
- Dispersive effects in the unitary Fermi gas
- Critical velocity, vortex shedding and drag in a unitary Fermi superfluid
- Correlations and synchronization in a Bose-Fermi mixture
- Densities probabilities of a Bose-Fermi Mixture in 1D Double well potential
- Tunneling Hamiltonian analysis of DC Josephson currents in a weakly-interacting Bose-Einstein condensate