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Trapped Ion Quantum Computing Superconducting Qubits Quantum Simulation

Interface Piezoelectric Loss in Superconducting Qubits

arXiv
Authors: Haoxin Zhou, Kangdi Yu, Yashwanth Balaji, Sanjit Shirol, Leo Sementilli, Zi-Huai Zhang, Adam Schwartzberg, Alp Sipahigil

Year

2026

Paper ID

63933

Status

Preprint

Abstract Read

~2 min

Abstract Words

142

Citations

0

Abstract

Dissipation remains a central obstacle to improving superconducting quantum circuits, yet the microscopic origins of loss in widely used materials platforms are not fully understood. Here, we report the observation of interface piezoelectricity-induced dissipation in superconducting qubits fabricated on high-resistivity silicon. Our devices use a transmon qubit with a shunt capacitor that simultaneously serves as an interdigital transducer embedded in a surface acoustic wave resonator. By tuning the qubit transition into resonance with discrete mechanical modes, we observe up to a factor-of-two reduction in qubit lifetime, consistent with energy exchange between the qubit and mechanical modes mediated by piezoelectric coupling at the aluminum-silicon interface. Our findings provide direct evidence for interface piezoelectricity as a distinct loss channel in superconducting qubits. Combined with multiphysics simulations, these findings suggest that interface piezoelectric loss can dominate over loss from two-level systems at sufficiently high frequencies.

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  • This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
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  • Dissipation remains a central obstacle to improving superconducting quantum circuits, yet the microscopic origins of loss in widely used materials platforms are not fully...

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