Optimizing Pulsed-Laser Ablation Production of AlCl Molecules for Laser Cooling
arXiv:2108.01158 · doi:10.1039/D1CP03515K
Abstract
Aluminum monochloride (AlCl) has been proposed as a promising candidate for laser cooling to ultracold temperatures, and recent spectroscopy results support this prediction. It is challenging to produce large numbers of AlCl molecules because it is a highly reactive open-shell molecule and must be generated in situ. Here we show that pulsed-laser ablation of stable, non-toxic mixtures of Al with an alkali or alkaline earth chlorides, denoted XCln, can provide a robust and reliable source of cold AlCl molecules. Both the chemical identity of XCln and the Al:XCln molar ratio are varied, and the yield of AlCl is monitored using absorption spectroscopy in a cryogenic gas. For KCl, the production of Al and K atoms was also monitored. We model the AlCl production in the limits of nonequilibrium recombination dominated by first-encounter events. The non-equilibrium model is in agreement with the data and also reproduces the observed trend with different XCln precursors. We find that AlCl production is limited by the solid-state densities of Al and Cl atoms and the recondensation of Al atoms in the ablation plume. We suggest future directions for optimizing the production of cold AlCl molecules using laser ablation.
References in corpus (17)
- Quantum phase transition from a superfluid to a Mott insulator in a gas of ultracold atoms
- Magneto-optical trapping of a diatomic molecule
- Schemes for robust quantum computation with polar molecules
- Precision Measurement of Time-Reversal Symmetry Violation with Laser-Cooled Polyatomic Molecules
- Radio Frequency Magneto-Optical Trapping of CaF with High Density
- Magneto-Optical Trap for Polar Molecules
- Enhanced sensitivity to variation of in molecular spectra
- Collisions of ultracold ^{23}Na^{87}Rb molecules with controlled chemical reactivities
- Ultracold molecules: new probes on the variation of fundamental constants
- Bimolecular chemistry in the ultracold regime
- Characteristics of a magneto-optical trap of molecules
- Radiative deflection of a BaF molecular beam from the optical cycling
- Spectroscopy on the Transition of Buffer-Gas Cooled AlCl
- Enhanced Sensitivity to the Time Variation of the Fine-Structure Constant and in Diatomic Molecules: A Closer Examination of Silicon Monobromide
- Characterisation of the State and Its Interaction with the State in Aluminium Monofluoride
- Simulation of Cryogenic Buffer Gas Beams
- Cold CH radicals for laser cooling and trapping