Ultracold $^{88}\rm{Sr}_2$ molecules in the absolute ground state
Abstract
We report efficient all-optical creation of an ultracold gas of alkaline-earth-metal dimers, , in their absolute ground state. Starting with weakly bound singlet molecules formed by narrow-line photoassociation in an optical lattice, followed by stimulated Raman adiabatic passage (STIRAP) via a singlet-dominant channel in the excited potential, we prepare pure samples of more than 5500 molecules in . We observe two-body collisional loss rates close to the universal limit for both the least bound and most bound vibrational states in . We demonstrate the enhancement of STIRAP efficiency in a magic-wavelength optical lattice where thermal decoherence is eliminated. Our results pave the way for the use of alkaline-earth-metal dimers for high-precision spectroscopy, and indicate favorable prospects for robust quantum state preparation of ultracold molecules involving closed-shell atoms, as well as molecule assembly in deep optical traps tuned to a magic wavelength.
Keywords
Cite
@article{arxiv.2108.05996,
title = {Ultracold $^{88}\rm{Sr}_2$ molecules in the absolute ground state},
author = {K. H. Leung and E. Tiberi and B. Iritani and I. Majewska and R. Moszynski and T. Zelevinsky},
journal= {arXiv preprint arXiv:2108.05996},
year = {2021}
}