In-situ tunable interaction with an invertible sign between a fluxonium and a post cavity

ORAL

Abstract

Quantum computation with bosonic modes presents a powerful paradigm for harnessing the principles of quantum mechanics to perform complex information processing tasks. In constructing a bosonic qubit with superconducting circuits, nonlinearity is typically introduced to a cavity mode through an ancillary two-level qubit. However, the ancilla's spurious heating has impeded progress towards fully fault-tolerant bosonic qubits. The ability to in situ decouple the ancilla when not in use would be beneficial but has so far only been realized with tunable couplers or additional parametric drives. This talk presents a novel architecture for quantum information processing, comprising a 3D post cavity coupled to a fluxonium ancilla via a readout resonator. This system's intricate energy level structure results in a complex landscape of interactions whose sign can be tuned in situ by the magnetic field threading the fluxonium loop without the need of additional elements. Our results could significantly advance the lifetime and controllability of bosonic qubits.

*This research was funded in whole or in part by the Austrian Science Fund (FWF), Grant DOI 10.55776/W1259, and the 10.55776/I4395 QuantERA grant QuCOS. T.H.-D. is funded by the 10.55776/COE1 QuantA grant.

Publication: https://arxiv.org/pdf/2409.07612

Presenters

  • Desislava G Atanasova

    • University of Innsbruck

Authors

  • Desislava G Atanasova

    • University of Innsbruck
  • Ian Yang

    • Paul Scherrer Institute
    • University of Innsbruck
  • Teresa Hoenigl-Decrinis

    • University of Innsbruck
  • Daria Gusenkova

    • Karlsruhe Institute of Technology
  • Ioan M. Pop

    • Karlsruhe Institute of Technology
  • Gerhard Kirchmair

    • University of Innsbruck