Simultaneous Zeeman deceleration of polyatomic free radical with lithium atoms
arXiv:2009.05829 · doi:10.1007/s11467-020-1003-3
Abstract
Chemistry in the ultracold regime enables fully quantum-controlled interactions between atoms and molecules, leading to the discovery of the hidden mechanisms in chemical reactions which are usually curtained by thermal averaging in the high temperature. Recently a couple of diatomic molecules have been cooled to ultracold regime based on laser cooling techniques, but the chemistry associated with these simple molecules is highly limited. In comparison, free radicals play a major role in many important chemical reactions, but yet to be cooled to submillikelvin temperature. Here we propose a novel method of decelerating \ce{CH3}, the simplest polyatomic free radical, with lithium atoms simultaneously by travelling wave magnetic decelerator. This scheme paves the way towards co-trapping \ce{CH3} and lithium, so that sympathetical cooling can be used to preparing ultracold free radical sample.
6 pages, 7 figures
References in corpus (10)
- Precision Test of Mass Ratio Variations with Lattice-Confined Ultracold Molecules
- Ultracold molecules: new probes on the variation of fundamental constants
- Collisions between cold molecules in a superconducting magnetic trap
- Controlling a quantum gas of polar molecules in an optical lattice
- Magnetic Trapping of Cold Methyl Radicals
- Measurement of the variation of electron-to-proton mass ratio using ultracold molecules produced from laser-cooled atoms
- Trapping of molecular Oxygen together with Lithium atoms
- Observation of quantum diffractive collisions using shallow atomic traps
- Sympathetic cooling of polyatomic molecules with S-state atoms in a magnetic trap
- Cold collisions of heavy molecules with alkali-metal atoms in a magnetic field: Ab initio analysis and prospects for sympathetic cooling of SrOH by Li(S)