Nature Communications (Jun 2025)

Quantum control of an oscillator with a Kerr-cat qubit

  • Andy Z. Ding,
  • Benjamin L. Brock,
  • Alec Eickbusch,
  • Akshay Koottandavida,
  • Nicholas E. Frattini,
  • Rodrigo G. Cortiñas,
  • Vidul R. Joshi,
  • Stijn J. de Graaf,
  • Benjamin J. Chapman,
  • Suhas Ganjam,
  • Luigi Frunzio,
  • Robert J. Schoelkopf,
  • Michel H. Devoret

DOI
https://doi.org/10.1038/s41467-025-60352-w
Journal volume & issue
Vol. 16, no. 1
pp. 1 – 7

Abstract

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Abstract Bosonic codes offer a hardware-efficient strategy for quantum error correction by redundantly encoding quantum information in the large Hilbert space of a harmonic oscillator. However, experimental realizations of these codes are often limited by ancilla errors propagating to the encoded logical qubit during syndrome measurements. The Kerr-cat qubit has been proposed as an ancilla for these codes due to its theoretically-exponential noise bias, which would enable fault-tolerant error syndrome measurements, but the coupling required to perform these syndrome measurements has not yet been demonstrated. In this work, we experimentally realize driven parametric coupling of a Kerr-cat qubit to a high-quality-factor microwave cavity and demonstrate a gate set that would enable universal quantum control of the cavity. We measure the decoherence of the cavity in the presence of the Kerr-cat and discover excess dephasing due to heating of the Kerr-cat to excited states. By engineering frequency-selective dissipation to counteract this heating, we are able to eliminate this dephasing, thereby demonstrating a high on-off ratio of control. Our results pave the way toward using the Kerr-cat to fault-tolerantly measure error syndromes of bosonic codes.