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Coherent control of strontium atoms trapped in an optical lattice and applications for quantum simulation

POSTER

Abstract

Neutral atoms trapped in optical lattices present a versatile platform for precision spectroscopy, quantum simulation, and quantum information processing. In our setup, we demonstrate the essential building blocks for a quantum simulator based on ultracold strontium atoms. We present state-dependent trapping for ground and metastable states, large cavity-enhanced optical lattices, single-atom resolved fluorescence imaging, and high-resolution optical spectroscopy. In particular, we report on the coherent excitation of the ultranarrow 1S0-3P2 magnetic quadrupole transition in 88Sr. Building on this work, we demonstrate high-fidelity Rabi oscillations between the metastable 3P0 and 3P2 states, which are coupled by a Raman transition. The developed tools for controlled trapping and coherent manipulation of two-electron atoms pave the way for quantum simulation of tunable open quantum systems.

Publication: V. Klüsener, S. Pucher, D. Yankelev, J. Trautmann, F. Spriestersbach, D. Filin, S. G. Porsev, M. S. Safronova, I. Bloch, and S. Blatt, arXiv:2401.03934 (2024).<br><br>S. Pucher, V. Klüsener, F. Spriestersbach, J. Geiger, A. Schindewolf, I. Bloch, and S. Blatt, arXiv:2401.11054 (2024).

Presenters

  • Valentin Kluesener

    Max Planck Institute of Quantum Optics

Authors

  • Valentin Kluesener

    Max Planck Institute of Quantum Optics

  • Sebastian Pucher

    Max Planck Institute of Quantum Optics

  • Felix Spriestersbach

    Max Planck Institute of Quantum Optics

  • Jan Geiger

    Max Planck Institute of Quantum Optics

  • Andreas Schindewolf

    Max Planck Institute for Quantum Optics

  • Immanuel Bloch

    Max Planck Institute for Quantum Optics

  • Sebastian Blatt

    Max Planck Institute of Quantum Optics