Optimization of experimental parameters for laser-slowing and magneto-optical trapping of MgF molecules

Fuente: arXiv
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Autori principali: Lim, Dongkyu, Chae, Eunmi
Natura: Preprint
Pubblicazione: 2025
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author Lim, Dongkyu
Chae, Eunmi
author_facet Lim, Dongkyu
Chae, Eunmi
contents Diatomic molecules are promising systems for quantum science applications due to their complex energy structures and strong dipole-dipole interactions. Achieving ultracold temperatures is essential for these applications, but the complexity of molecular energy levels requires precise optimization of experimental parameters for laser slowing and magneto-optical trapping (MOT). Here, we simulate and optimize the complete process of slowing and trapping MgF molecules, from a buffer-gas beam source to MOT capture, using Bayesian optimization. By combining laser slowing and MOT simulations, we identify parameters that maximize the capture velocity and the ratio of trapped molecules. Our results demonstrate a maximum MOT capture velocity of 82.5 m/s, and 28.6% of the molecules that reach the MOT region are trapped under optimal conditions. These findings provide insights into experimental setups for MgF and similar molecules, offering a framework for advancing molecular laser cooling and quantum experiments.
format Preprint
id arxiv_https___arxiv_org_abs_2511_16022
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Optimization of experimental parameters for laser-slowing and magneto-optical trapping of MgF molecules
Lim, Dongkyu
Chae, Eunmi
Atomic Physics
Diatomic molecules are promising systems for quantum science applications due to their complex energy structures and strong dipole-dipole interactions. Achieving ultracold temperatures is essential for these applications, but the complexity of molecular energy levels requires precise optimization of experimental parameters for laser slowing and magneto-optical trapping (MOT). Here, we simulate and optimize the complete process of slowing and trapping MgF molecules, from a buffer-gas beam source to MOT capture, using Bayesian optimization. By combining laser slowing and MOT simulations, we identify parameters that maximize the capture velocity and the ratio of trapped molecules. Our results demonstrate a maximum MOT capture velocity of 82.5 m/s, and 28.6% of the molecules that reach the MOT region are trapped under optimal conditions. These findings provide insights into experimental setups for MgF and similar molecules, offering a framework for advancing molecular laser cooling and quantum experiments.
title Optimization of experimental parameters for laser-slowing and magneto-optical trapping of MgF molecules
topic Atomic Physics
url https://arxiv.org/abs/2511.16022