Quantum kinetic theory of a Bose-Einstein gas confined in a lattice

Ana Maria Rey, B. L. Hu, Esteban Calzetta, and Charles W. Clark
Phys. Rev. A 72, 023604 – Published 4 August 2005

Abstract

We extend our earlier work on the nonequilibrium dynamics of a Bose-Einstein condensate initially loaded into a one-dimensional optical lattice. From the two-particle-irreducible (2PI) closed-time-path (CTP) effective action for the Bose-Hubbard Hamiltonian we derive causal equations of motion that treat mean-field effects and quantum fluctuations on an equal footing. We demonstrate that these equations reproduce well-known limits when simplifying approximations are introduced. For example, when the system dynamics admits two-time separation, we obtain the Kadanoff-Baym equations of quantum kinetic theory, and in the weakly interacting limit, we show that the local equilibrium solutions of our equations reproduce the second-order corrections to the self-energy of the type originally derived by Beliaev. The derivation of quantum kinetic equations from the 2PI-CTP effective action not only checks the viability of the formalism but also shows it to be a tractable framework for going beyond standard Boltzmann equations of motion.

  • Received 2 December 2004

DOI:https://doi.org/10.1103/PhysRevA.72.023604

Authors & Affiliations

Ana Maria Rey1,2, B. L. Hu1, Esteban Calzetta3, and Charles W. Clark2

  • 1Department of Physics, University of Maryland, College Park, Maryland 20742, USA
  • 2National Institute of Standards and Technology, Gaithersburg, Maryland 20899, USA
  • 3Departamento de Fisica, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires-Ciudad Universitaria, 1428 Buenos Aires, Argentina

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Issue

Vol. 72, Iss. 2 — August 2005

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