Steady-state quantum statistics of a non-Markovian atom laser. II

A. S. Bradley, J. J. Hope, and M. J. Collett
Phys. Rev. A 68, 063611 – Published 22 December 2003
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Abstract

We present a steady-state analysis of a quantum-mechanical model of an atom laser. A single-mode atomic trap coupled to a continuum of external modes is driven by a saturable pumping mechanism. In the dilute flux regime, where atom-atom interactions are negligible in the output, we find an analytic form for the linewidth and frequency shift of the laser. This result does not make the Born-Markov approximation, but is based on the far less restrictive “self-consistent Markov approximation.” The more exact treatment has a different effective damping rate and occupation of the lasing mode, as well as a shifted frequency and linewidth of the output. We examine gravitational damping numerically, finding linewidths and frequency shifts for a range of pumping rates. We treat mean-field damping analytically, finding a memory function for the Thomas-Fermi regime. The occupation and linewidth are found to have a nonlinear scaling behavior which has implications for the stability of atom lasers.

  • Received 30 October 2002

DOI:https://doi.org/10.1103/PhysRevA.68.063611

©2003 American Physical Society

Authors & Affiliations

A. S. Bradley*

  • School of Chemical and Physical Sciences, Victoria University of Wellington, Wellington, New Zealand

J. J. Hope

  • Australian Centre for Quantum-Atom Optics, Department of Physics, Australian National University, ACT 0200, Australia

M. J. Collett

  • Department of Physics, University of Auckland, Aukland, New Zealand

  • *Electronic address: bradleasht@scs.vuw.ac.nz

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Vol. 68, Iss. 6 — December 2003

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