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    Coherent Control of the Fine-Structure Qubit in a Single Alkaline-Earth Atom

    G. Unnikrishnan1, P. Ilzhöfer1, A. Scholz1, C. Hölzl1, A. Götzelmann1, R. K. Gupta1, J. Zhao1, J. Krauter1, S. Weber2 et al.

    N. Makki2, H. P. Büchler2, T. Pfau1, and F. Meinert1

    • 15. Physikalisches Institut and Center for Integrated Quantum Science and Technology, Universität Stuttgart, Pfaffenwaldring 57, 70569 Stuttgart, Germany
    • 2Institute for Theoretical Physics III and Center for Integrated Quantum Science and Technology, Universität Stuttgart, Pfaffenwaldring 57, 70569 Stuttgart, Germany

    Phys. Rev. Lett. 132, 150606 – Published 11 April, 2024

    DOI: https://doi.org/10.1103/PhysRevLett.132.150606

    Abstract

    We report on the first realization of a novel neutral atom qubit encoded in the spin-orbit coupled metastable states P03 and P23 of a single Sr88 atom trapped in an optical tweezer. Raman coupling of the qubit states promises rapid single-qubit rotations on par with the fast Rydberg-mediated two-body gates. We demonstrate preparation, readout, and coherent control of the qubit. In addition to driving Rabi oscillations bridging an energy gap of more than 17 THz using a pair of phase-locked clock lasers, we also carry out Ramsey spectroscopy to extract the transverse qubit coherence time T2. When the tweezer is tuned into magic trapping conditions, which is achieved in our setup by tuning the tensor polarizability of the P23 state via an external control magnetic field, we measure T2=1.2ms. A microscopic quantum mechanical model is used to simulate our experiments including dominant noise sources. We identify the main constraints limiting the observed coherence time and project improvements to our system in the immediate future. Our Letter opens the door for a so-far-unexplored qubit encoding concept for neutral atom-based quantum computing.

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    See Also

    Fine-Structure Qubit Encoded in Metastable Strontium Trapped in an Optical Lattice

    S. Pucher, V. Klüsener, F. Spriestersbach, J. Geiger, A. Schindewolf, I. Bloch, and S. Blatt
    Phys. Rev. Lett. 132, 150605 (2024)

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