Relaxation of Fermionic Excitations in a Strongly Attractive Fermi Gas in an Optical Lattice
arXiv:1105.1778 · doi:10.1103/PhysRevLett.107.145303
Abstract
We theoretically study the relaxation of high energy single particle excitations into molecules in a system of attractive fermions in an optical lattice, both in the superfluid and the normal phase. In a system characterized by an interaction scale and a tunneling rate , we show that the relaxation rate scales as in the large limit. We obtain explicit expressions for the exponent , both in the low temperature superfluid phase and the high temperature phase with pairing but no coherence between the molecules. We find that the relaxation rate decreases both with temperature and deviation of the fermion density from half-filling. We show that quasiparticle and phase degrees of freedom are effectively decoupled within experimental timescales allowing for observation of ordered states even at high total energy of the system.
5 pages, 3 figures
References in corpus (24)
- Many-Body Physics with Ultracold Gases
- Quantum phase transition from a superfluid to a Mott insulator in a gas of ultracold atoms
- Thermalization and its mechanism for generic isolated quantum systems
- Theory of ultracold Fermi gases
- Non-equilibrium coherence dynamics in one-dimensional Bose gases
- Repulsively bound atom pairs in an optical lattice
- Quench dynamics and non equilibrium phase diagram of the Bose-Hubbard model
- Evidence for Superfluidity of Ultracold Fermions in an Optical Lattice
- Strongly correlated fermions after a quantum quench
- Quantum quench dynamics of the Luttinger model
- Molecules of Fermionic Atoms in an Optical Lattice
- Relaxation of antiferromagnetic order in spin-1/2 chains following a quantum quench
- Many-body Landau-Zener dynamics in coupled 1D Bose liquids
- Spin gradient demagnetization cooling of ultracold atoms
- Dynamical band flipping in fermionic lattice systems: An ac-field-driven change of the interaction from repulsive to attractive
- Thermalization of a pump-excited Mott insulator
- Metastable superfluidity of repulsive fermionic atoms in optical lattices
- Slow Mass Transport and Statistical Evolution of An Atomic Gas Across the Superfluid-Mott Insulator Transition
- Nonequilibrium dynamics of weakly and strongly paired superconductors
- Equilibration rates and negative absolute temperatures for ultracold atoms in optical lattices
- Dissipation-induced d-Wave Pairing of Fermionic Atoms in an Optical Lattice
- Intrinsic dephasing in one dimensional ultracold atom interferometers
- Dynamical Unbinding Transition in a Periodically Driven Mott Insulator
- Universal Dephasing of Many-Body Rabi Oscillations of Atoms in One-Dimensional Traps
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- Quantum Dynamics of Solitons in Strongly Interacting Systems on Optical Lattices
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