Bose-enhanced relaxation of driven atom-molecule condensates
arXiv:2401.03026 · doi:10.1103/PhysRevA.109.043311
Abstract
Motivated by recent experiments we study the interconversion between ultracold atomic and molecular condensates, quantifying the resulting oscillations and their slow decay. We find that near equilibrium the dominant damping source is the decay of condensed molecules into non-condensed pairs, with a pair kinetic energy that is resonant with the frequency of the oscillating atom-molecule interconversions. The decay, however, is non-exponential, as strong population of the resonant pairs leads to Bose enhancement. Introducing an oscillating magnetic field, which periodically modulates the molecular binding energy, enhances the oscillations at short times. However, the resulting enhancement of the pair-production process results in an accelerated decay which rapidly cuts off the initial oscillation growth.
journal version
References in corpus (7)
- Fragmentation of Bose-Einstein Condensates
- Observation of atom pairs in spontaneous four wave mixing of two colliding Bose-Einstein Condensates
- Dissipation induced coherence of a two-mode Bose-Einstein condensate
- Collective emission of matter-wave jets from driven Bose-Einstein condensates
- Mean-field dynamics of a two-mode Bose-Einstein condensate subject to noise and dissipation
- Two-body transients in coupled atomic-molecular BECs
- Ultracold Chemistry and its Reaction Kinetics