Semiclassical quantisation for a bosonic atom-molecule conversion system
arXiv:1505.03351 · doi:10.1103/PhysRevA.92.012121
Abstract
We consider a simple quantum model of atom-molecule conversion where bosonic atoms can combine into diatomic molecules and vice versa. The many-particle system can be expressed in terms of the generators a deformed algebra, and the mean-field dynamics takes place on a deformed version of the Bloch sphere, a teardrop shaped surface with a cusp singularity. We analyse the mean-field and many-particle correspondence, which shows typical features of quantum-classical correspondence. We demonstrate that semiclassical methods can be employed to recover full many-particle features from the mean-field description in cold atom systems with atom-molecule conversion, and derive an analytic expression for the many-particle density of states in the limit of large particle numbers.
10 pages, 10 figures, corrected typos, further small changes, similar to published version
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Cited by in corpus (6)
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- Exact ground-state correlation functions of an atomic-molecular boson conversion model
- Entropies and IPR as Markers for a Phase Transition in a Two-Level Model for Atom-Diatomic Molecule Coexistence
- Walking with the atoms in a chemical bond : A perspective using quantum phase transition