Microwave Package Design for Superconducting Quantum Processors
Author(s)
Huang, Sihao; Lienhard, Benjamin; Calusine, Greg; Vepsäläinen, Antti; Braumüller, Jochen; Kim, David K; Melville, Alexander J; Niedzielski, Bethany M; Yoder, Jonilyn L; Kannan, Bharath; Orlando, Terry P; Gustavsson, Simon; Oliver, William D; ... Show more Show less
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Solid-state qubits with transition frequencies in the microwave regime, such
as superconducting qubits, are at the forefront of quantum information
processing. However, high-fidelity, simultaneous control of superconducting
qubits at even a moderate scale remains a challenge, partly due to the
complexities of packaging these devices. Here, we present an approach to
microwave package design focusing on material choices, signal line engineering,
and spurious mode suppression. We describe design guidelines validated using
simulations and measurements used to develop a 24-port microwave package.
Analyzing the qubit environment reveals no spurious modes up to 11GHz. The
material and geometric design choices enable the package to support qubits with
lifetimes exceeding 350 {\mu}s. The microwave package design guidelines
presented here address many issues relevant for near-term quantum processors.
Date issued
2021Department
Massachusetts Institute of Technology. Department of Physics; Massachusetts Institute of Technology. Department of Electrical Engineering and Computer Science; Massachusetts Institute of Technology. Research Laboratory of Electronics; Lincoln LaboratoryJournal
PRX Quantum
Publisher
American Physical Society (APS)
Citation
Huang, Sihao, Lienhard, Benjamin, Calusine, Greg, Vepsäläinen, Antti, Braumüller, Jochen et al. 2021. "Microwave Package Design for Superconducting Quantum Processors." PRX Quantum, 2 (2).
Version: Final published version