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    Recovery Dynamics of a Gap-Engineered Transmon after a Quasiparticle Burst

    Heekun Nho1,*, Thomas Connolly1, Pavel D. Kurilovich1, Spencer Diamond1,†, Charlotte G. L. Bøttcher1,‡, Leonid I. Glazman1,2, and Michel H. Devoret1,§,∥

    • 1Departments of Applied Physics and Physics, Yale University, New Haven, Connecticut 06520, USA
    • 2Yale Quantum Institute, Yale University, New Haven, Connecticut 06511, USA

    • *Contact author: heekun.nho@yale.edu
    • †Present address: Northrop Grumman Corporation, Linthicum, Maryland 21090, USA.
    • ‡Present address: Department of Applied Physics, Stanford University, Stanford, California 94305, USA.
    • §Contact author: michel.devoret@yale.edu
    • ∥Present address: Physics Department, U.C. Santa Barbara, Santa Barbara, California 93106, USA and Google Quantum AI, 301 Mentor Drive, Goleta, California 93111, USA.

    Phys. Rev. Lett. 136, 050601 – Published 4 February, 2026

    DOI: https://doi.org/10.1103/ql6q-wfpn

    Abstract

    Ionizing radiation impacts create bursts of quasiparticle density in superconducting qubits. These bursts temporarily degrade qubit coherence, which can be detrimental for quantum error correction. Here, we experimentally resolve quasiparticle bursts in 3D gap-engineered transmon qubits by continuously monitoring qubit transitions. Gap engineering allows us to reduce the burst detection rate by a factor of 5. This reduction falls 4 orders of magnitude short of that expected if the quasiparticles were to quickly thermalize to the cryostat temperature. We associate the limited effect of gap engineering with the slow thermalization of the phonons in our chips after the burst.

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