High Resolution Molecular Spectroscopy for Producing Ultracold Absolute Ground-State $^{23}$Na$^{87}$Rb Molecules
Abstract
We report a detailed molecular spectroscopy study on the lowest excited electronic states of for producing ultracold molecules in the electronic, rovibrational and hyperfine ground state. Starting from weakly-bound Feshbach molecules, a series of vibrational levels of the coupled excited states were investigated. After resolving, modeling and interpreting the hyperfine structure of several lines, we successfully identified a long-lived level resulting from the accidental hyperfine coupling between the and components of the state, satisfying all the requirements for the population transfer toward the lowest rovibrational level of the X state. Using two-photon spectroscopy, its binding energy was measured to be 4977.308(3) cm, the most precise value to date. We calibrated all the transition strengths carefully and also demonstrated Raman transfer of Feshbach molecules to the absolute ground state.
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Cite
@article{arxiv.1710.04883,
title = {High Resolution Molecular Spectroscopy for Producing Ultracold Absolute Ground-State $^{23}$Na$^{87}$Rb Molecules},
author = {Mingyang Guo and Romain Vexiau and Bing Zhu and Bo Lu and Nadia Bouloufa-Maafa and Olivier Dulieu and Dajun Wang},
journal= {arXiv preprint arXiv:1710.04883},
year = {2017}
}