English

Electron Electric Dipole Moment and Hyperfine Interaction Constants for ThO

Atomic Physics 2014-04-02 v3 Quantum Physics

Abstract

A recently implemented relativistic four-component configuration interaction approach to study P{\cal{P}}- and T{\cal{T}}-odd interaction constants in atoms and molecules is employed to determine the electron electric dipole moment effective electric field in the Ω=1\Omega=1 first excited state of the ThO molecule. We obtain a value of Eeff=75.6[GVcm]E_{\text{eff}} = 75.6 \left[\frac{\rm GV}{\rm cm}\right] with an estimated error bar of 3%3\% and 10%10\% smaller than a previously reported result [arXiv:1308.0414 [physics.atom-ph]]. Using the same wavefunction model we obtain an excitation energy of TvΩ=1=5329T_v^{\Omega=1} = 5329 [\cm], in accord with the experimental value within 2%2\%. In addition, we report the implementation of the magnetic hyperfine interaction constant AA_{||} as an expectation value, resulting in A=1335A_{||} = -1335 [MHz] for the Ω=1\Omega=1 state in ThO. The smaller effective electric field increases the previously measured upper bound to the electron electric dipole moment interaction constant [arXiv:1310.7534v2 [physics.atom-ph]] and thus mildly mitigates constraints to possible extensions of the Standard Model of particle physics.

Keywords

Cite

@article{arxiv.1401.2284,
  title  = {Electron Electric Dipole Moment and Hyperfine Interaction Constants for ThO},
  author = {Timo Fleig and Malaya K. Nayak},
  journal= {arXiv preprint arXiv:1401.2284},
  year   = {2014}
}

Comments

7 pages, 1 figure new layout; replaced "confidence" with "error bar"; Paper has been accepted by Journal of Molecular Spectroscopy. Please refer to that (modified) version as reference

R2 v1 2026-06-22T02:42:45.156Z