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    Syncopated dynamical decoupling to suppress crosstalk in quantum circuits

    Bram Evert1,*, Zoe Gonzalez Izquierdo2,3, James Sud4,3, Hong-Ye Hu2,3,†, Shon Grabbe2, Eleanor G. Rieffel2, Matthew J. Reagor1,‡, and Zhihui Wang2,3,§

    • *Contact author: bevert@rigetti.com
    • Presently at Harvard University.
    • Presently at Google Quantum AI.
    • §Contact author: zhihui.wang@nasa.gov

    Phys. Rev. Applied 24, 044025 – Published 8 October, 2025

    DOI: https://doi.org/10.1103/8lxc-lvv1

    Abstract

    Theoretically understanding and experimentally characterizing and modifying the underlying Hamiltonian of a quantum system is of utmost importance in achieving high-fidelity quantum gates for quantum computing. In this work, we explore the use of dynamical decoupling (DD) in characterizing and suppressing undesired two-qubit couplings as well as the underlying single-qubit decoherence, both significant hurdles to achieving precise quantum control and realizing quantum computing on many hardware prototypes. Through discrete search of DD sequences, we identify sequences that protect against decoherence and selectively target unwanted two-qubit interactions of general form. On a transmon-qubit-based superconducting quantum device, we identify separate white and 1/f noise components underlying the single-qubit decoherence and a static ZZ coupling between pairs of qubits. A family of syncopated DD sequences is found and their efficiency is demonstrated in two-qubit benchmarking experiments. The syncopated decoupling technique significantly boosts performance in a realistic algorithmic quantum circuit.

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