Release-free phononic crystal with strong microwave coupling
Abstract
Phonons hold promise for storing and transferring quantum information, including in mechanically-mediated quantum interconnects between superconducting qubits and light. Phononic crystal cavities confine gigahertz sound to micron-scale volumes well matched to near-infrared light. So far, these devices have typically been suspended to suppress phononic radiation loss into the substrate, but suspension limits thermal anchoring leading to excess noise. Release-free phononic crystals have emerged as...
Description / Details
Phonons hold promise for storing and transferring quantum information, including in mechanically-mediated quantum interconnects between superconducting qubits and light. Phononic crystal cavities confine gigahertz sound to micron-scale volumes well matched to near-infrared light. So far, these devices have typically been suspended to suppress phononic radiation loss into the substrate, but suspension limits thermal anchoring leading to excess noise. Release-free phononic crystals have emerged as a way to address this challenge -- but had yet to be shown compatible with strong electromechanical interactions. Here, we demonstrate a release-free phononic crystal cavity strongly coupled to a high-impedance microwave resonator, with an electromechanical coupling rate that exceeds both the mechanical and microwave loss rates, leading to a cooperativity up to on resonance. In addition, our lithium niobate phononic crystals reach quality factors above at millikelvin temperature on both silicon and sapphire substrates. Our results establish release-free phononic crystals as compact, scalable interfaces between microwaves and gigahertz sound for emerging sensing, communication, and computing systems.
Source: arXiv:2607.29666v1 - http://arxiv.org/abs/2607.29666v1 PDF: https://arxiv.org/pdf/2607.29666v1 Original Link: http://arxiv.org/abs/2607.29666v1
Please sign in to join the discussion.
No comments yet. Be the first to share your thoughts!
Aug 3, 2026
Quantum Computing
Quantum Physics
0