Photoassociation and optical Feshbach resonances in an atomic Bose-Einstein condensate: treatment of correlation effects
Pascal Naidon, Francoise Masnou-Seeuws

TL;DR
This paper develops a detailed many-body theoretical framework for photoassociation in Bose-Einstein condensates, comparing two approximations to understand correlation effects and rogue dissociation phenomena.
Contribution
It introduces and compares two approximations for modeling correlation effects in photoassociation, revealing different regimes and effects on line shapes and dissociation thresholds.
Findings
Identification of adiabatic and coherent regimes of photoassociation.
Different thresholds for rogue dissociation in each regime.
Line shape asymmetry depends on the approximation used.
Abstract
In this paper we formulate the time-dependent many-body theory of photoassociation in an atomic Bose-Einstein condensate with realistic interatomic interactions, using and comparing two approximations: the first-order cumulant approximation, originally developed by Kohler and Burnett [Phys. Rev. A 65, 033601 (2002)], and the reduced pair wave approximation, based on a previous paper [Phys. Rev. A 68 033612 (2003)] generalizing to two channels the Cherny-Shanenko approach [Phys. Rev. E 62, 1046 (2000)]. The two approximations differ only by the way a pair of condensate atoms is influenced by the mean field at short interatomic separations. For these approximations we identify two different regimes of photoassociation: the adiabatic regime and the coherent regime. The threshold for the so-called "rogue dissociation" [Phys. Rev. Lett. 88, 090403 (2002)] (where mean-field theory breaks…
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