DOE OSTI · 2448566
Progress on 3D SRF-based architecture for quantum computing
Abstract
Superconducting radio frequency (SRF) cavities are excellent choices for storing and manipulating quantum information as quantum d-level systems (qudits) due to their exceptionally long lifetimes and large accessible Hilbert spaces. A common strategy to manipulate the states is to use a nonlinear element like a transmon. We present preliminary experimental results obtained with cavity displacements and selective number dependent arbitrary phase gates for universal qudit control, and its application towards High-energy physics (HEP) simulations and beyond. We discuss the advantages and challenges associated with building a 3D SRF architecture while maintaining long cavity lifetimes in the presence of lossy components. We show how the system coherence properties can be preserved by carefully engineering to minimize the participation of the long coherence modes in different loss channels, while ensuring sufficient quantum controllability. We further discuss the path towards building multi-qudit systems.
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Romanenko, Alexander, Roy, Tanay, Lu, Yao, Kim, Taeyoon, Zorzetti, Silvia, Bal, Mustafa, Bafia, Daniel, Crisa, Francesco, Garattoni, Sabrina, Grassellino, Anna, Heidler, Paul, Murthy, Akshay, Pronitchev, Oleg, Pilipenko, Roman M., You, Xinyuan, Zanten, David V., Zhu, Shaojiang. 2024-09-25. Progress on 3D SRF-based architecture for quantum computing. https://doi.org/10.2172/2448566
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