Benchmarking and Mitigating Coherent Errors in Controlled-Phase Gates due to Spectator Qubits

ORAL

Abstract

A major challenge in operating multi-qubit quantum processors is to mitigate multi-qubit coherent errors. For superconducting circuits, besides crosstalk originating from imperfect isolation of control lines, dispersive coupling between qubits is a major source of multi-qubit coherent errors. We benchmark phase errors in a controlled-phase gate due to dispersive coupling of either of the qubits involved in the gate to one or more spectator qubits [1]. We measure the associated gate infidelity using quantum process tomography. We point out that, due to coupling of the gate qubits to a non-computational state during the gate, two-qubit conditional phase errors are enhanced. Finally, we show that we can mitigate the identified gate errors using dynamical decoupling techniques. Our work is important for understanding limits to the fidelity of two-qubit gates with finite on/off ratio in multi-qubit.
[1] Krinner, Lazăr et al. Phys. Rev. Applied 14 024024 (2020)

*This work is supported by ODNI, IARPA, via the U.S. Army Research Office grant W911NF-16-1-0071, by SNFS NCCR QSIT, the EU Flagship H2020-FETFLAG-2018-03 project 820363 OpenSuperQ, by the SNFS R'equip grant 206021-170731, by Fondation Jean-Jacques & Felicia Lopez-Loreta, and by ETH Zurich.

Presenters

  • Stefania Lazar

    • ETH Zurich

Authors

  • Sebastian Krinner

    • ETH Zurich
  • Stefania Lazar

    • ETH Zurich
  • Ants Remm

    • ETH Zurich
  • Christian Kraglund Andersen

    • ETH Zurich
  • Nathan Lacroix

    • ETH Zurich
  • Graham J. Norris

    • ETH Zurich
  • Christoph Hellings

    • ETH Zurich
  • Mihai Gabureac

    • ETH Zurich
  • Christopher Eichler

    • Department of Physics, ETH Zurich
    • ETH Zurich
    • Princeton University
  • Andreas Wallraff

    • Department of Physics, ETH Zurich
    • ETH Zurich