Mechanical resonator–based quantum computing
- Yu Yang
- Igor Kladarić
- Martynas Skrabulis
- Michael Eichenberger
- Stefano Marti
- Simon Storz
- Jonathan Esche
- Raquel García Bellés
- Max-Emanuel Kern
- Andraz Omahen
- Arianne Brooks
- Marius Bild
- Matteo Fadel
- Yiwen Chu
2026-05-28
Hybrid quantum systems combine the advantages of different physical platforms with the goal of realizing more powerful quantum information processing devices. Mechanical systems, such as bulk acoustic wave resonators, feature many highly coherent harmonic modes in a compact footprint, complementing the strong nonlinearities and fast operation of superconducting quantum circuits. We developed an architecture for mechanical resonator–based quantum computing in which a superconducting qubit is used to perform quantum gates on a collection of mechanical modes. We demonstrate a universal gate set composed of single-qubit gates and controlled arbitrary-phase gates and showcase their use in the quantum Fourier transform and period-finding algorithms. These results show the potential of using mechanical systems to build crucial components for quantum technologies, such as quantum random-access memories.