Upper speed limit on parametric gates in Josephson junction-based circuits (part I)
ORAL
Abstract
In superconducting quantum systems, parametric driving can realize versatile and high-fidelity quantum control by activating nonlinear Hamiltonian terms with strong off-resonant driving. However, multiple factors can limit the fidelity of the parametric gates. In experiments, it is observed that the quantum coupler and coupled qubits rapidly leak to high excited states when the drive strength exceeds a threshold, limiting the maximum gate speed. To understand this limitation, we experimentally investigate it using a transmon qubit as a prototypical nonlinear element. The sudden onset of transitions to high transmon excited states is observed at a critical drive amplitude, which can be understood by the emergence of chaotic behavior of the driven nonlinear system. We also provide theoretical predictions and an explanation of this limitation, detailed in the second part of this talk, showing excellent agreement with experiment data. This theory can be further extended to more complicated systems to help improve the speed of multi-qubit parametric gates.
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Publication: Xia et al. arXiv:2306.10162<br>Dumas et al. Phys. Rev. X 14, 041023 (2024)
Presenters
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Mingkang Xia
University of Pittsburgh, University of Pittsburgh, Yale University
Authors
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Mingkang Xia
University of Pittsburgh, University of Pittsburgh, Yale University
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Matthew Capocci
Northwestern University
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Cristóbal Lledó
Université de Sherbrooke
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Jacob J Repicky
Yale University
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Ian Mondragon-Shem
Northwestern University
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Benjamin d'Anjou
Université de Sherbrooke, Sherbrooke
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Ryan Kaufman
University of Pittsburgh
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Boris Mesits
University of Pittsburgh, Yale University, University of Pittsburgh
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David Pekker
University of Pittsburgh
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Alexandre Blais
Université de Sherbrooke
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Jens Koch
Northwestern University
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Michael Hatridge
Yale University, University of Pittsburgh