Superfluid insulator transition in a moving condensate.ppt
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1、Superfluid insulator transition in a moving condensate,Anatoli Polkovnikov,Harvard University,Ehud Altman, Eugene Demler, Bertrand Halperin, Misha Lukin,Plan of the talk,General motivation and overview. Bosons in optical lattices. Equilibrium phase diagram. Examples of quantum dynamics. Superfluid-i
2、nsulator transition in a moving condensate. Qualitative picture Non-equilibrium phase diagram. Role of quantum fluctuations Conclusions and experimental implications.,Why is the physics of cold atoms interesting?,It is possible to realize strongly interacting systems, both fermionic and bosonic.,Par
3、ameters of the Hamiltonian are well known and well controlled.,One can address not only conventional thermodynamic questions but also problems of quantum dynamics far from equilibrium.,No coupling to the environment.,Interacting bosons in optical lattices.,Highly tunable periodic potentials with no
4、defects.,Equilibrium system.,Interaction energy (two-body collisions):,Eint is minimized when Nj=N=const:,Interaction suppresses number fluctuations and leads to localization of atoms.,Equilibrium system.,Kinetic (tunneling) energy:,Kinetic energy is minimized when the phase is uniform throughout th
5、e system.,Classically the ground state will have uniform density and a uniform phase.,However, number and phase are conjugate variables. They do not commute:,There is a competition between the interaction leading to localization and tunneling leading to phase coherence.,Ground state is a superfluid:
6、,Strong tunneling,M. Greiner et. al., Nature (02),Adiabatic increase of lattice potential,Nonequilibrium phase transitions,wait for time t,Fast sweep of the lattice potential,M. Greiner et. al. Nature (2002),Revival of the initial state at,Explanation,Fast sweep of the lattice potential,A. Tuchman e
7、t. al., (2001),A.P., S. Sachdev and S.M. Girvin, PRA 66, 053607 (2002), E. Altman and A. Auerbach, PRL 89, 250404 (2002),Two coupled sites. Semiclassical limit.,The phase is not defined in the initial insulting phase. Start from the ensemble of trajectories.,Interference of multiple classical trajec
8、tories results in oscillations and damping of the phase coherence.,Numerical results:,Semiclassical approximation to many-body dynamics: A.P., PRA 68, 033609 (2003), ibid. 68, 053604 (2003).,Classical non-equlibrium phase transitions,Superfluids can support non-dissipative current.,accelarate the la
9、ttice,Exp: Fallani et. al., (Florence) cond-mat/0404045,Theory: Wu and Niu PRA (01); Smerzi et. al. PRL (02).,Theory: superfluid flow becomes unstable.,Based on the analysis of classical equations of motion (number and phase commute).,Damping of a superfluid current in 1D,C.D. Fertig et. al. cond-ma
10、t/0410491,See: AP and D.-W. Wang, PRL 93, 070401 (2004).,What will happen if we have both quantum fluctuations and non-zero superfluid flow?,?,Simple intuitive explanation,Viscosity of Helium II, Andronikashvili (1946),Two-fluid model for Helium II,Landau (1941),Cold atoms: quantum depletion at zero
11、 temperature.,The normal current is easily damped by the lattice. Friction between superfluid and normal components would lead to strong current damping at large U/J.,Physical Argument,SF current in free space,SF current on a lattice,Strong tunneling regime (weak quantum fluctuations): s = const. Cu
12、rrent has a maximum at p=/2.,This is precisely the momentum corresponding to the onset of the instability within the classical picture.,Wu and Niu PRA (01); Smerzi et. al. PRL (02).,Not a coincidence!,s superfluid density, p condensate momentum.,Consider a fluctuation,If I decreases with p, there is
13、 a continuum of resonant states smoothly connected with the uniform one. Current cannot be stable.,no lattice:,Include quantum depletion.,In equilibrium,In a current state:,So we expect:,With quantum depletion the current state is unstable at,p,Valid if N1:,Quantum rotor model,SF in the vicinity of
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