Collisions Between Ultracold Molecules and Atoms in a Magnetic Trap
Abstract
We prepare mixtures of ultracold CaF molecules and Rb atoms in a magnetic trap and study their inelastic collisions. When the atoms are prepared in the spin-stretched state and the molecules in the spin-stretched component of the first rotationally excited state, they collide inelastically with a rate coefficient of cm/s at temperatures near 100~K. We attribute this to rotation-changing collisions. When the molecules are in the ground rotational state we see no inelastic loss and set an upper bound on the spin relaxation rate coefficient of cm/s with 95% confidence. We compare these measurements to the results of a single-channel loss model based on quantum defect theory. The comparison suggests a short-range loss parameter close to unity for rotationally excited molecules, but below 0.04 for molecules in the rotational ground state.
Keywords
Cite
@article{arxiv.2101.01580,
title = {Collisions Between Ultracold Molecules and Atoms in a Magnetic Trap},
author = {S. Jurgilas and A. Chakraborty and C. J. H. Rich and L. Caldwell and H. J. Williams and N. J. Fitch and B. E. Sauer and Matthew D. Frye and Jeremy M. Hutson and M. R. Tarbutt},
journal= {arXiv preprint arXiv:2101.01580},
year = {2021}
}
Comments
9 pages, 6 figures. Minor changes following review