Landé $g$ factor measurement of $^{48}$Ti$^+$ using simultaneous co-magnetometry and quantum logic spectroscopy

Fuente: arXiv
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Main Authors: Rehmert, Till, Zawierucha, Maximilian J., Dietze, Kai, Schmidt, Piet O., Wolf, Fabian, Porsev, Sergey, Filin, Dmytro, Cheung, Charles, Safronova, Marianna S.
Format: Preprint
Published: 2025
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author Rehmert, Till
Zawierucha, Maximilian J.
Dietze, Kai
Schmidt, Piet O.
Wolf, Fabian
Porsev, Sergey
Filin, Dmytro
Cheung, Charles
Safronova, Marianna S.
author_facet Rehmert, Till
Zawierucha, Maximilian J.
Dietze, Kai
Schmidt, Piet O.
Wolf, Fabian
Porsev, Sergey
Filin, Dmytro
Cheung, Charles
Safronova, Marianna S.
contents The use of atomic systems as accurate magnetic field probes requires precise characterization of the particle's magnetic properties. Insufficient knowledge of the spatial and temporal characteristics of the external magnetic field often limits the determination of the corresponding atomic parameters. Here, we present a quantum logic scheme mitigating systematic effects caused by temporal magnetic field fluctuations through simultaneous co-magnetometry. This allows measurement of the ground state $g$ factors of a single $^{48}$Ti$^+$ ion with uncertainties at the $10^{-6}$ level. We compare experimentally determined $g$ factors with new theoretical predictions using a combination of configuration interaction (CI) and second-order many-body perturbation theory (MBPT). Theory and experiment agree within the expected level of accuracy. The scheme can be applied to many atomic species, including those that cannot be directly laser cooled.
format Preprint
id arxiv_https___arxiv_org_abs_2508_15488
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Landé $g$ factor measurement of $^{48}$Ti$^+$ using simultaneous co-magnetometry and quantum logic spectroscopy
Rehmert, Till
Zawierucha, Maximilian J.
Dietze, Kai
Schmidt, Piet O.
Wolf, Fabian
Porsev, Sergey
Filin, Dmytro
Cheung, Charles
Safronova, Marianna S.
Atomic Physics
The use of atomic systems as accurate magnetic field probes requires precise characterization of the particle's magnetic properties. Insufficient knowledge of the spatial and temporal characteristics of the external magnetic field often limits the determination of the corresponding atomic parameters. Here, we present a quantum logic scheme mitigating systematic effects caused by temporal magnetic field fluctuations through simultaneous co-magnetometry. This allows measurement of the ground state $g$ factors of a single $^{48}$Ti$^+$ ion with uncertainties at the $10^{-6}$ level. We compare experimentally determined $g$ factors with new theoretical predictions using a combination of configuration interaction (CI) and second-order many-body perturbation theory (MBPT). Theory and experiment agree within the expected level of accuracy. The scheme can be applied to many atomic species, including those that cannot be directly laser cooled.
title Landé $g$ factor measurement of $^{48}$Ti$^+$ using simultaneous co-magnetometry and quantum logic spectroscopy
topic Atomic Physics
url https://arxiv.org/abs/2508.15488