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TT: Fachverband Tiefe Temperaturen
TT 51: Nonequilibrium Quantum Many-Body Systems I (joint session TT/DY)
TT 51.10: Vortrag
Mittwoch, 14. März 2018, 12:15–12:30, H 3010
Thermalization of isolated Bose-Einstein condensates by dynamical heat bath generation — •Anna Posazhennikova1, Mauricio Trujillo-Martinez2, and Johann Kroha2 — 1Royal Holloway University of London, Egham, Surrey, UK — 2Physikalisches Institut, Universität Bonn, Germany
If and how an isolated quantum system thermalizes despite its unitary time evolution is a long-standing, open problem of many-body physics. The eigenstate thermalization hypothesis (ETH) postulates that thermalization happens at the level of individual eigenstates of a system's Hamiltonian. However, the ETH requires stringent conditions to be validated, and it does not address how the thermal state is reached dynamically from an initial non-equilibrium state. We consider a Bose-Einstein condensate (BEC) trapped in a double-well potential with an initial population imbalance. We find that the system thermalizes although the initial conditions violate the ETH requirements. We identify three dynamical regimes. After an initial regime of undamped Josephson oscillations, the subsystem of incoherent excitations or quasiparticles (QP) becomes strongly coupled to the BEC subsystem by means of a dynamically generated, parametric resonance. When the energy stored in the QP system reaches its maximum, the number of QPs becomes effectively constant, and the system enters a quasi-hydrodynamic regime where the two subsystems are weakly coupled. In this final regime the BEC acts as a grand-canonical heat reservoir for the QP system (and vice versa), resulting in thermalization. We term this mechanism dynamical bath generation (DBG).