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Exploring erbium-doped ceria as a new platform for telecom-wavelength quantum memory

ORAL

Abstract

Scalable solid-state quantum memory systems that operate at telecom wavelengths are essential for building wide-area fiber optic-based quantum networks. A particularly promising platform for such a quantum memory is erbium-doped ceria (Er:CeO2), which combines the shielded telecom-wavelength (~1.5 µm) 4f-4f transition of erbium with the long (47 ms) predicted spin coherence time of CeO2 [1]. Here, we demonstrate growth of epitaxial Er:CeO2 thin films using molecular beam epitaxy (MBE) with controlled crystal quality and Er concentration (0.01% and lower). We present a study of the optical properties of a resonantly-excited Er ensemble, which shows long excited state lifetimes (up to 6 ms) and well-resolved crystal field splitting with narrow inhomogeneous peaks (<100 GHz). Further optical investigation also yields spectral diffusion-limited homogeneous linewidths that are sufficiently narrow to suggest that Er:CeO2 may be a candidate for exploring quantum memory nanophotonic devices. Overall, we present a viable platform for scalable and usable quantum memories based on erbium-doped cerium oxide.

Publication: [1] S. Kanai et al., PNAS, 2022, 119 (15) e2121808119.

Presenters

  • Gregory Grant

    University of Chicago

Authors

  • Gregory Grant

    University of Chicago

  • Jiefei Zhang

    Argonne National Laboratory

  • Kathryn E Sautter

    Argonne National Laboratory

  • Sean E Sullivan

    Argonne National Laboratory

  • Manish Kumar Singh

    University of Chicago

  • Ignas Masiulionis

    University of Chicago

  • Jessica B Martins

    Argonne National Laboratory

  • Connor P Horn

    University of Chicago

  • Rishi Chebrolu

    The University of Chicago, University of Chicago

  • John W Freeland

    Argonne National Laboratory

  • F. Joseph F Heremans

    Argonne National Laboratory

  • Supratik Guha

    Argonne National Laboratory, Argonne National Laboratory and University of Chicago