First-principles quantum simulations of dissociation of molecular condensates: Atom correlations in momentum space
arXiv:cond-mat/0606345 · doi:10.1103/PhysRevA.74.033620
Abstract
We investigate the quantum many-body dynamics of dissociation of a Bose-Einstein condensate of molecular dimers into pairs of constituent bosonic atoms and analyze the resulting atom-atom correlations. The quantum fields of both the molecules and atoms are simulated from first principles in three dimensions using the positive-P representation method. This allows us to provide an exact treatment of the molecular field depletion and s-wave scattering interactions between the particles, as well as to extend the analysis to nonuniform systems. In the simplest uniform case, we find that the major source of atom-atom decorrelation is atom-atom recombination which produces molecules outside the initially occupied condensate mode. The unwanted molecules are formed from dissociated atom pairs with non-opposite momenta. The net effect of this process -- which becomes increasingly significant for dissociation durations corresponding to more than about 40% conversion -- is to reduce the atom-atom correlations. In addition, for nonuniform systems we find that mode-mixing due to inhomogeneity can result in further degradation of the correlation signal. We characterize the correlation strength via the degree of squeezing of particle number-difference fluctuations in a certain momentum-space volume and show that the correlation strength can be increased if the signals are binned into larger counting volumes.
Final published version, with updated references and minor modifications
References in corpus (11)
- Observation of Bose-Einstein Condensation of Molecules
- Spatial quantum noise interferometry in expanding ultracold atom clouds
- Observation of molecules produced from a Bose-Einstein condensate
- Formation of Quantum-Degenerate Sodium Molecules
- Quantum turbulence and correlations in Bose-Einstein condensate collisions
- Dissociation of ultracold molecules with Feshbach resonances
- Formation of a molecular Bose-Einstein condensate and an entangled atomic gas by Feshbach resonance
- Spontaneous dissociation of long-range Feshbach molecules
- Dissociation of Feshbach Molecules into Different Partial Waves
- Entanglement properties of degenerate four-wave mixing of matter-waves in a periodic potential
- Classification of zero-energy resonances by dissociation of Feshbach molecules
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- Proposal for a motional-state Bell inequality test with ultracold atoms
- Spatial pair correlations of atoms in molecular dissociation
- Properties of a coupled two species atom-heteronuclear molecule condensate
- Pair correlations of scattered atoms from two colliding Bose-Einstein Condensates: Perturbative Approach
- Matter-wave squeezing and the generation of SU(1,1) and SU(2) coherent-states via Feshbach resonances
- Atom-atom correlations and relative number squeezing in dissociation of spatially inhomogeneous molecular condensates
- Directional spatial structure of dissociated elongated molecular condensates
- Anisotropy in s-wave Bose-Einstein condensate collisions and its relationship to superradiance
- On the Dynamics of the Fermi-Bose Model