Driving superconducting qubits into chaos
Chavez-Carlos J.
Reynoso M.A.P.
Cortinas R.G.
Garcia-Mata I.
Batista V.S.
Pérez-Bernal F.
Wisniacki D.A.
Santos L.F.
Quantum Science and Technology
Doi 10.1088/2058-9565/ad93fb
Volumen 10
2025-01-01
Citas: 3
© 2024 IOP Publishing Ltd. All rights, including for text and data mining, AI training, and similar technologies, are reserved.Kerr parametric oscillators are potential building blocks for fault-tolerant quantum computers. They can stabilize Kerr-cat qubits, which offer advantages toward the encoding and manipulation of error-protected quantum information. The recent realization of Kerr-cat qubits made use of the nonlinearity of transmon superconducting circuits and a squeezing drive. Increasing nonlinearities can enable faster gate times, but, as shown here, can also induce chaos and melt the qubit away. We determine the region of validity of the Kerr-cat qubit and discuss how its disintegration could be experimentally detected. The danger zone for parametric quantum computation is also a potential playground for investigating quantum chaos with driven superconducting circuits.
Kerr-cat qubit, quantum chaos, superconducting circuits
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