Classical-quantum correspondence in bosonic two-mode conversion systems: polynomial algebras and Kummer shapes
Abstract
Bosonic quantum conversion systems can be modeled by many-particle single-mode Hamiltonians describing a conversion of molecules of type A into molecules of type B and vice versa. These Hamiltonians are analyzed in terms of generators of a polynomially deformed algebra. In the mean-field limit of large particle numbers, these systems become classical and their Hamiltonian dynamics can again be described by polynomial deformations of a Lie algebra, where quantum commutators are replaced by Poisson brackets. The Casimir operator restricts the motion to Kummer shapes, deformed Bloch spheres with cusp singularities depending on and . It is demonstrated that the many-particle eigenvalues can be recovered from the mean-field dynamics using a WKB type quantization condition. The many-particle state densities can be semiclassically approximated by the time-periods of periodic orbits, which show characteristic steps and singularities related to the fixed points, whose bifurcation properties are analyzed.
Cite
@article{arxiv.1510.01469,
title = {Classical-quantum correspondence in bosonic two-mode conversion systems: polynomial algebras and Kummer shapes},
author = {Eva-Maria Graefe and Hans Jürgen Korsch and Alexander Rush},
journal= {arXiv preprint arXiv:1510.01469},
year = {2016}
}
Comments
13 pages, 13 figures