The precise control of nuclear spin states is crucial for a wide range of quantum technology applications. Here, we propose a fast and robust single-qubit gate in 87Sr, utilizing the concept of optical nuclear electric resonance (ONER). ONER exploits the interaction between the quadrupole moment of a nucleus and the electric field gradient generated by its electronic environment, enabling spin level transitions via amplitude-modulated laser light. We investigate the hyperfine structure of the 5s2~1S0→~5s5p~3P1 optical transition in neutral 87Sr, and identify the magnetic field strengths and laser parameters necessary to drive spin transitions between the mI = -9/2 and mI = -5/2 hyperfine levels in the ground state. Our simulations show that ONER could enable faster spin operations compared to the state-of-the-art oscillations in this 'atomic qubit'. Moreover, we show that spin-flip operations exceeding 99.9\% fidelity can be performed even in the presence of typical noise sources. These results pave the way for significant advances in nuclear spin control, opening new possibilities for quantum memories and other quantum technologies.
@article{arxiv.2501.11163,
title = {Optical nuclear electric resonance as single qubit gate for trapped neutral atoms},
author = {Johannes K. Krondorfer and Sebastian Pucher and Matthias Diez and Sebastian Blatt and Andreas W. Hauser},
journal= {arXiv preprint arXiv:2501.11163},
year = {2025}
}
Comments
This is the author accepted version of the article, available Open Access under a CC-BY license. The article was published in *Journal of Physics B* by IOP Publishing in November 2025