Mitigating losses of superconducting qubits coupled strongly to defect modes

ORAL

Abstract

Energy relaxation in superconducting circuits is typically attributed to the coupling of qubits to a bath of material defects, which vary in nature, location and time. The defect modes show a large range of coherence times and coupling rates to qubits. Here, we investigate strategies to mitigate losses to the defects that couple strongly to the qubits, as they are particularly detrimental to the fidelities of operations relying on frequency excursions, such as the two-qubit controlled-phase gates. We report on the time and thermal-cycling dynamics of defect-mode configurations tracked for over 400 days in a single device. We also explore methods for fabricating qubits with a reduced number of strongly-coupled defect modes by changing the Josephson junction dimensions and the surface cleaning methods employed. Our results provide new insights into the properties of strongly-coupled defect modes and on strategies to mitigate loss of qubit coherence induced by those defects. The gained insights are invaluable for scaling up the number of qubits realized on devices for quantum information processing.

*This work has been financially supported by the Office of the Director of National Intelligence (ODNI), Intelligence Advanced Research Projects Activity (IARPA), via the U.S. Army Research Office grant W911NF-16-1-0071, by the EU Flagship on Quantum Technology H2020-FETFLAG-2018-03 project 820363 OpenSuperQ, by the Swiss National Science Foundation (SNSF) via the National Centre of Competence in Research Quantum Science and Technology (NCCR QSIT) and SNFS R'Equip grant 206021-170731, by the EU program H2020-FETOPEN project 828826 Quromorphic, by the Baugarten Foundation, by Fondation Jean-Jacques & Felicia Lopez-Loreta, by the ETH Zurich Foundation and by ETH Zurich. The views and conclusions contained herein are those of the authors and should not be interpreted as necessarily representing the official policies or endorsements, either expressed or implied, of the ODNI, IARPA, or the U.S. Government.

Presenters

  • Dante Colao Zanuz

    • ETH Zurich

Authors

  • Dante Colao Zanuz

    • ETH Zurich
  • Jean-Claude Besse

    • ETH Zurich
  • Quentin Ficheux

    • ETH Zurich
  • Alexei Orekhov

    • ETH Zurich
  • Laurent Michaud

    • ETH Zurich
  • Kilian Hanke

    • ETH Zurich
  • Ants Remm

    • ETH Zurich
  • Alexander Flasby

    • ETH Zurich
  • Christoph Hellings

    • ETH Zurich
  • Michael Kerschbaum

    • ETH Zurich
  • Nathan Lacroix

    • ETH Zurich
  • Stefania Lazar

    • ETH Zurich
  • Graham J Norris

    • ETH Zurich
  • Mohsen B Panah

    • ETH Zurich
  • François Swiadek

    • ETH Zurich
  • Sebastian Krinner

    • ETH Zurich
  • Christopher Eichler

    • ETH Zurich
    • ETH
    • ETH Zurich, FAU Erlangen-Nürnberg
  • Andreas Wallraff

    • ETH Zurich