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Systematic study and uncertainty evaluation of P, T-odd molecular enhancement factors in BaF.

Authors :
Haase, Pi A. B.
Doeglas, Diewertje J.
Boeschoten, Alexander
Eliav, Ephraim
Iliaš, Miroslav
Aggarwal, Parul
Bethlem, H. L.
Borschevsky, Anastasia
Esajas, Kevin
Hao, Yongliang
Hoekstra, Steven
Marshall, Virginia R.
Meijknecht, Thomas B.
Mooij, Maarten C.
Steinebach, Kees
Timmermans, Rob G. E.
Touwen, Anno P.
Ubachs, Wim
Willmann, Lorenz
Yin, Yanning
Source :
Journal of Chemical Physics; 7/21/2021, Vol. 155 Issue 3, p1-14, 14p
Publication Year :
2021

Abstract

A measurement of the magnitude of the electric dipole moment of the electron (eEDM) larger than that predicted by the Standard Model (SM) of particle physics is expected to have a huge impact on the search for physics beyond the SM. Polar diatomic molecules containing heavy elements experience enhanced sensitivity to parity (P) and time-reversal (T)-violating phenomena, such as the eEDM and the scalar–pseudoscalar (S–PS) interaction between the nucleons and the electrons, and are thus promising candidates for measurements. The NL-eEDM collaboration is preparing an experiment to measure the eEDM and S–PS interaction in a slow beam of cold BaF molecules [P. Aggarwal et al., Eur. Phys. J. D 72, 197 (2018)]. Accurate knowledge of the electronic structure parameters, W<subscript>d</subscript> and W<subscript>s</subscript>, connecting the eEDM and the S–PS interaction to the measurable energy shifts is crucial for the interpretation of these measurements. In this work, we use the finite field relativistic coupled cluster approach to calculate the W<subscript>d</subscript> and W<subscript>s</subscript> parameters in the ground state of the BaF molecule. Special attention was paid to providing a reliable theoretical uncertainty estimate based on investigations of the basis set, electron correlation, relativistic effects, and geometry. Our recommended values of the two parameters, including conservative uncertainty estimates, are 3.13 ± 0.12 × 1 0 24 Hz e cm for W<subscript>d</subscript> and 8.29 ± 0.12 kHz for W<subscript>s</subscript>. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219606
Volume :
155
Issue :
3
Database :
Complementary Index
Journal :
Journal of Chemical Physics
Publication Type :
Academic Journal
Accession number :
151503791
Full Text :
https://doi.org/10.1063/5.0047344