Nonadiabatic dissociation of molecular Bose-Einstein condensates:
competition between chemical reactions
- URL: http://arxiv.org/abs/2202.08468v3
- Date: Sun, 2 Oct 2022 03:24:58 GMT
- Title: Nonadiabatic dissociation of molecular Bose-Einstein condensates:
competition between chemical reactions
- Authors: Rajesh K. Malla
- Abstract summary: We provide a framework to solve generic models describing the dissociation of multiple molecular Bose-Einstein condensates in a nonadiabatic regime.
In our framework, a time-dependent non-Hermitian quantum mechanics naturally manifests which can alternatively be realized experimentally in photonic systems.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We provide a framework to solve generic models describing the dissociation of
multiple molecular Bose-Einstein condensates in a nonadiabatic regime. The
competition between individual chemical reactions can lead to non-trivial
dependence on critical components such as path interference and symmetries,
thus, affecting the final distribution of atomic population. We find an
analytical solution for an illustrative example model involving four atomic
modes. When the system parameters satisfy $CPT$ symmetry, where $C$ is charge
conjugation, $P$ is parity, and $T$ is time-reversal symmetry, our solution
predicts a population imbalance between atomic modes that is exponentially
sensitive to system parameters. However, a weakly broken symmetry alters the
population in each atomic mode and can reverse the population imbalance. Our
solution also demonstrates a strong quantum correlation between atomic modes
that leads to the spontaneous production of atoms in a multi-mode squeezed
state. Moreover, in our framework, a time-dependent non-Hermitian quantum
mechanics naturally manifests which can alternatively be realized
experimentally in photonic systems.
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