Direct laser cooling of calcium monohydride molecules
Abstract
We demonstrate optical cycling and sub-Doppler laser cooling of a cryogenic buffer-gas beam of calcium monohydride (CaH) molecules. We measure vibrational branching ratios for laser cooling transitions for both excited electronic states A and B. We measure further that repeated photon scattering via the transition is achievable at a rate of photons/s and demonstrate the interaction-time limited scattering of photons by repumping the largest vibrational decay channel. We also demonstrate the ability to sub-Doppler cool a molecular beam of CaH through the magnetically assisted Sisyphus effect. Using a standing wave of light, we lower the molecular beam's transverse temperature from mK to mK. We compare these results to sub-Doppler forces modeled using optical Bloch equations and Monte Carlo simulations of the molecular beam trajectories. This work establishes a clear pathway for creating a magneto-optical trap (MOT) of CaH molecules. Such a MOT could serve as a starting point for production of ultracold hydrogen gas via dissociation of a trapped CaH cloud.
Keywords
Cite
@article{arxiv.2203.04841,
title = {Direct laser cooling of calcium monohydride molecules},
author = {S. F. Vázquez-Carson and Q. Sun and J. Dai and D. Mitra and T. Zelevinsky},
journal= {arXiv preprint arXiv:2203.04841},
year = {2022}
}
Comments
11 pages, 4 figures, 3 tables