Laser spectroscopy and CP-violation sensitivity of actinium monofluoride.

Athanasakis-Kaklamanakis, M; Au, M; Kyuberis, A; Zülch, C; Gaul, K; Wibowo, H; Skripnikov, L; Lalanne, L et al. · Nature · 2025

basic_science · Level V

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Abstract

The apparent invariance of the strong nuclear force under combined charge conjugation and parity (CP) remains an open question in modern physics<sup>1,2</sup>. Precision experiments with heavy atoms and molecules can provide stringent constraints on CP violation via searches for effects due to permanent electric dipole moments and other CP-odd properties in leptons, hadrons and nuclei<sup>3</sup>. Radioactive molecules have been proposed as highly sensitive probes for such searches<sup>4</sup>, but experiments with most such molecules have so far been beyond technical reach. Here we report the production and spectroscopic study of a gas-phase actinium molecule, <sup>227</sup>AcF. We observe the predicted strongest electronic transition from the ground state, which is necessary for efficient readout in searches of symmetry-violating interactions. Furthermore, we perform electronic- and nuclear-structure calculations for <sup>227</sup>AcF to determine its sensitivity to various CP-violating parameters, and find that a realistic, near-term experiment with a precision of 1 mHz would improve current constraints on the CP-violating parameter hyperspace by 3 orders of magnitude. Our results thus highlight the potential of <sup>227</sup>AcF for exceptionally sensitive searches of CP violation.