High accuracy theoretical investigations of CaF, SrF, and BaF and implications for laser-cooling.

J Chem Phys

Van Swinderen Institute for Particle Physics and Gravity, University of Groningen, Nijenborgh 4, 9747AG Groningen, The NetherlandsNikhef, National Institute for Subatomic Physics, Science Park 105, 1098 XG Amsterdam, The NetherlandsDepartment of Physical and Theoretical Chemistry and Laboratory for Advanced Materials, Faculty of Natural Sciences, Comenius University, Ilkovičova 6, 84215 Bratislava, SlovakiaDivision of Theoretical Chemistry, Faculty of Sciences, Vrije Universiteit Amsterdam, De Boelelaan 1083, 1081 HV Amsterdam, The NetherlandsDepartment of Physics and Astronomy, and LaserLaB, Vrije Universiteit Amsterdam, De Boelelaan 1081, 1081 HV Amsterdam, The Netherlands.

Published: July 2019

AI Article Synopsis

  • The NL-eEDM collaboration is working on an experiment to detect the electric dipole moment of the electron using cold barium fluoride (BaF) molecules and needs detailed molecular properties for effective measurement planning.
  • Accurate predictions of these properties are made through advanced theoretical methods, such as relativistic Fock-space coupled cluster and multireference configuration interaction.
  • The findings suggest that the AΠ→XΣ transition is optimal for cooling BaF molecules, while the BΣ→XΣ transition is unsuitable due to its nondiagonal Franck-Condon factors; additionally, the properties of the A'Δ state in BaF present unique challenges compared to lighter homologs like CaF and SrF.

Article Abstract

The NL-eEDM collaboration is building an experimental setup to search for the permanent electric dipole moment of the electron in a slow beam of cold barium fluoride molecules [NL-eEDM Collaboration, Eur. Phys. J. D 72, 197 (2018)]. Knowledge of the molecular properties of BaF is thus needed to plan the measurements and, in particular, to determine the optimal laser-cooling scheme. Accurate and reliable theoretical predictions of these properties require the incorporation of both high-order correlation and relativistic effects in the calculations. In this work, theoretical investigations of the ground and lowest excited states of BaF and its lighter homologs, CaF and SrF, are carried out in the framework of the relativistic Fock-space coupled cluster and multireference configuration interaction methods. Using the calculated molecular properties, we determine the Franck-Condon factors (FCFs) for the AΠ→XΣ transition, which was successfully used for cooling CaF and SrF and is now considered for BaF. For all three species, the FCFs are found to be highly diagonal. Calculations are also performed for the BΣ →XΣ transition recently exploited for laser-cooling of CaF; it is shown that this transition is not suitable for laser-cooling of BaF, due to the nondiagonal nature of the FCFs in this system. Special attention is given to the properties of the A'Δ state, which in the case of BaF causes a leak channel, in contrast to CaF and SrF species where this state is energetically above the excited states used in laser-cooling. We also present the dipole moments of the ground and excited states of the three molecules and the transition dipole moments (TDMs) between the different states. Finally, using the calculated FCFs and TDMs, we determine that the AΠ→XΣ transition is suitable for transverse cooling in BaF.

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Source
http://dx.doi.org/10.1063/1.5098540DOI Listing

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