| Literature DB >> 33643688 |
Shiqian Ding1, Yewei Wu1, Ian A Finneran1, Justin J Burau1, Jun Ye1.
Abstract
Complex molecular structure demands customized solutions to laser cooling by extending its general set of principles and practices. Compared with other laser-cooled molecules, yttrium monoxide (YO) exhibits a large electron-nucleus interaction, resulting in a dominant hyperfine interaction over the electron spin-rotation coupling. The YO ground state is thus comprised of two manifolds of closely spaced states, with one of them possessing a negligible Landé g factor. This unique energy level structure favors dual-frequency dc magneto-optical trapping (MOT) and gray molasses cooling (GMC). We report exceptionally robust cooling of YO at 4 μK over a wide range of laser intensity, detunings (one- and two-photon), and magnetic field. The magnetic insensitivity enables the spatial compression of the molecular cloud by alternating GMC and MOT under the continuous operation of the quadrupole magnetic field. A combination of these techniques produces a laser-cooled molecular sample with the highest phase space density in free space.Entities:
Keywords: Atomic and Molecular Physics; Quantum Physics
Year: 2020 PMID: 33643688 PMCID: PMC7909871 DOI: 10.1103/physrevx.10.021049
Source DB: PubMed Journal: Phys Rev X ISSN: 2160-3308 Impact factor: 15.762