Diatomic molecules of alkali-metal and alkaline-earth-metal atoms: interaction potentials, dipole moments, and polarizabilities

Fuente: arXiv
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Main Authors: Ladjimi, Hela, Tomza, Michał
Format: Preprint
Published: 2023
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author Ladjimi, Hela
Tomza, Michał
author_facet Ladjimi, Hela
Tomza, Michał
contents Ultracold diatomic molecules find application in quantum studies ranging from controlled chemistry and precision measurement physics to quantum many-body simulation and potentially quantum computing. Accurate knowledge of molecular properties is required to guide and explain ongoing experiments. Here, in an extensive and comparative study, we theoretically investigate the electronic properties of the ground-state diatomic molecules composed of alkali-metal (Li, Na, K, Rb, Cs, Fr) and alkaline-earth-metal (Be, Mg, Ca, Sr, Ba, Ra) atoms. We study 78 hetero- and homonuclear diatomic combinations, including 21 alkali-metal molecules in the $X^1Σ^+$ and $a^3Σ^+$ electronic states, 36 alkali-metal--alkaline-earth-metal molecules in the $X^2Σ^+$ electronic state, and 21 alkaline-earth-metal molecules in the $X^1Σ^+$ electronic state. We calculate potential energy curves, permanent electric dipole moments, and polarizabilities using the hierarchy of coupled cluster methods upto CCSDTQ with large Gaussian basis sets and small-core relativistic energy-consistent pseudopotentials. We collect and analyze corresponding spectroscopic constants. We estimate computational uncertainties and compare the present values with previous experimental and theoretical data to establish a new theoretical benchmark. The presented results should be useful for further application of the studied molecules in modern ultracold physics and chemistry experiments.
format Preprint
id arxiv_https___arxiv_org_abs_2303_17527
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Diatomic molecules of alkali-metal and alkaline-earth-metal atoms: interaction potentials, dipole moments, and polarizabilities
Ladjimi, Hela
Tomza, Michał
Atomic Physics
Quantum Gases
Chemical Physics
Ultracold diatomic molecules find application in quantum studies ranging from controlled chemistry and precision measurement physics to quantum many-body simulation and potentially quantum computing. Accurate knowledge of molecular properties is required to guide and explain ongoing experiments. Here, in an extensive and comparative study, we theoretically investigate the electronic properties of the ground-state diatomic molecules composed of alkali-metal (Li, Na, K, Rb, Cs, Fr) and alkaline-earth-metal (Be, Mg, Ca, Sr, Ba, Ra) atoms. We study 78 hetero- and homonuclear diatomic combinations, including 21 alkali-metal molecules in the $X^1Σ^+$ and $a^3Σ^+$ electronic states, 36 alkali-metal--alkaline-earth-metal molecules in the $X^2Σ^+$ electronic state, and 21 alkaline-earth-metal molecules in the $X^1Σ^+$ electronic state. We calculate potential energy curves, permanent electric dipole moments, and polarizabilities using the hierarchy of coupled cluster methods upto CCSDTQ with large Gaussian basis sets and small-core relativistic energy-consistent pseudopotentials. We collect and analyze corresponding spectroscopic constants. We estimate computational uncertainties and compare the present values with previous experimental and theoretical data to establish a new theoretical benchmark. The presented results should be useful for further application of the studied molecules in modern ultracold physics and chemistry experiments.
title Diatomic molecules of alkali-metal and alkaline-earth-metal atoms: interaction potentials, dipole moments, and polarizabilities
topic Atomic Physics
Quantum Gases
Chemical Physics
url https://arxiv.org/abs/2303.17527