Stabilization of the number of Bose-Einstein-condensed atoms in evaporative cooling via three-body recombination loss

Makoto Yamashita and Tetsuya Mukai
Phys. Rev. A 68, 063601 – Published 2 December 2003
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Abstract

The dynamics of evaporative cooling of magnetically trapped 87Rb atoms is studied on the basis of the quantum kinetic theory of a Bose gas. We carried out the quantitative calculations of the time evolution of conventional evaporative cooling where the frequency of the radio-frequency magnetic field is swept exponentially. This “exponential-sweep cooling” is known to become inefficient at the final stage of the cooling process due to a serious three-body recombination loss. We precisely examine how the growth of a Bose-Einstein condensate depends on the experimental parameters of evaporative cooling, such as the initial number of trapped atoms, the initial temperature, and the bias field of a magnetic trap. It is shown that three-body recombination drastically depletes the trapped 87Rb atoms as the system approaches the quantum degenerate region and the number of condensed atoms finally becomes insensitive to these experimental parameters. This result indicates that the final number of condensed atoms is well stabilized by a large nonlinear three-body loss against the fluctuations of experimental conditions in evaporative cooling.

  • Received 20 December 2002

DOI:https://doi.org/10.1103/PhysRevA.68.063601

©2003 American Physical Society

Authors & Affiliations

Makoto Yamashita and Tetsuya Mukai

  • NTT Basic Research Laboratories, NTT Corporation, 3-1, Morinosato-Wakamiya, Atsugi-shi, Kanagawa 243-0198, Japan

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Issue

Vol. 68, Iss. 6 — December 2003

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