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Design of a release-free piezo-optomechanical quantum transducer

ORAL

Abstract

Quantum transduction between microwave and optical photons offers the potential to merge the long-range connectivity of optical photons with the deterministic quantum operations of superconducting microwave qubits. A promising approach to achieving this uses an intermediary mechanical mode along with piezo-optomechanical interactions. Traditionally, these transducers are suspended to confine mechanical fields, but this complicates manufacturing and comes with the major challenge of poor thermal anchoring and a trade-off between noise and efficiency. To overcome these issues, we introduce the -- to the best of our knowledge -- first release-free piezo-optomechanical quantum transducer architecture. Our release-free, i.e. non-suspended, design leverages a silicon-on-sapphire (SOS) platform. It combines release-free lithium niobate electromechanical crystals with silicon optomechanical crystals on a sapphire substrate, optimizing thermal anchoring and microwave and mechanical coherence. Despite departing from the traditional suspended transducer paradigm, our release-free design achieves coupling rates sufficient for quantum-level interactions between microwave photons, phonons, and optical photons. Unconventionally, it utilizes high-wavevector mechanical modes tightly confined to the chip surface. Beyond quantum science and engineering, this platform and its design principles could also propel low-power acousto-optic systems in integrated photonics.

Publication: P. Burger, J. Frey, J. Kolvik, D. Hambraeus, and R. Van Laer, "Design of a release-free piezo-optomechanical quantum transducer" (2024), arXiv:2408.15134 [quant-ph]

Presenters

  • Paul Burger

    Chalmers Univ of Technology

Authors

  • Paul Burger

    Chalmers Univ of Technology

  • Joey Frey

    Chalmers Univ of Tech

  • Johan Olov Kolvik

    Chalmers Univ of Tech

  • David Hambraeus

    Chalmers University of Technology

  • Raphael Van Laer

    Chalmers University of Technology