Design of a release-free piezo-optomechanical quantum transducer
Journal article, 2025

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 our knowledge—first design of a release-free electro-optomechanical quantum transducer. Our release-free, i.e., non-suspended, design leverages a silicon-on-sapphire 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.

Author

Paul Burger

Chalmers, Microtechnology and Nanoscience (MC2), Quantum Technology

Joey Frey

Chalmers, Microtechnology and Nanoscience (MC2), Quantum Technology

Johan Kolvik

Chalmers, Microtechnology and Nanoscience (MC2), Quantum Technology

David Hambraeus

Quantum Technology PhD Students

Raphaël Van Laer

Chalmers, Microtechnology and Nanoscience (MC2), Quantum Technology

APL Photonics

2378-0967 (eISSN)

Vol. 10 1 010801

Scalable Quantum Optical Interconnects (QUSCALE)

European Commission (EC) (EC/H2020/948265), 2021-11-01 -- 2026-10-31.

Attojoule-per-bit acousto-optics

Swedish Foundation for Strategic Research (SSF) (FFL21-0039), 2022-08-01 -- 2027-12-31.

Subject Categories (SSIF 2025)

Condensed Matter Physics

Other Physics Topics

DOI

10.1063/5.0246075

More information

Latest update

2/10/2025