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Breakdown of macroscopic quantum self-trapping in coupled mesoscopic one-dimensional Bose gases

Source: Phys. Rev. A 81, 013621 (2010); doi:10.1103/PhysRevA.81.013621

Published 25 January 2010

PACS
  • 03.75.Kk
    Dynamic properties of Bose-Einstein condensates
  • 03.75.Lm
    Tunneling, Josephson effect, Bose-Einstein condensates in periodic potentials, solitons, vortices and topological excitations
  • 67.85.-d
    Ultracold gases, trapped gases (quantum fluids)
  • YEAR: 2010
PUBLICATION DATA
ISSN:
1935-4061 (online)
Publisher:
AIP is a member of CrossRef APS
Rafael Hipolito and Anatoli Polkovnikov
Department of Physics, Boston University, Boston, Massachusetts 02215, USA
Two coupled Bose-Einstein condensates with a large population imbalance exhibit macroscopic quantum self-trapping (MQST) if the ratio of interaction energy to tunneling energy is above a critical value. Here we investigate effect of quantum fluctuations on MQST. In particular, we analyze the dynamics of a system of two elongated Bose gases prepared with a large population imbalance, where due to the quasi-one-dimensional character of the gas we no longer have true long range order, and the effect of quantum fluctuations is much more important. We show that MQST is possible in this system, but even when it is achieved it is not always dynamically stable. Using this instability one can construct states with sharply peaked momentum distributions around characteristic momenta dependent on system parameters. Our other finding is the nonmonotonic oscillating dependence of the decay rate of the MQST on the length of the wires. We also address the interesting question of thermalization in this system and show that it occurs only in sufficiently long wires. ©2010 The American Physical Society
History: Received 5 November 2009; published 25 January 2010
Permalink: http://link.aps.org/abstract/PRA/v81/e013621
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