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Correlated Error Bursts in a Gap-Engineered Superconducting Qubit Array

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arxiv 2506.18228 v1 pith:XKNNX4XS submitted 2025-06-23 quant-ph cond-mat.mes-hall

classification quant-phcond-mat.mes-hall
keywords errorcorrelatederrorsqubitimpactssuperconductingacrossbursts
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abstract

One of the roadblocks towards the implementation of a fault-tolerant superconducting quantum processor is impacts of ionizing radiation with the qubit substrate. Such impacts temporarily elevate the density of quasiparticles (QPs) across the device, leading to correlated qubit error bursts. The most damaging errors, $T_1$ errors, stem from QP tunneling across the qubit Josephson junctions (JJs). Recently, we demonstrated that this type of error can be strongly suppressed by engineering the profile of superconducting gap at the JJs in a way that prevents QP tunneling. In this work, we identify a new type of impact-induced correlated error that persists in the presence of gap engineering. We observe that impacts shift the frequencies of the affected qubits, and thus lead to correlated phase errors. The frequency shifts are systematically negative, reach values up to $3\,{\rm MHz}$, and last for $\sim 1\,{\rm ms}$. We provide evidence that the shifts originate from QP-qubit interactions in the JJ region. Further, we demonstrate that the shift-induced phase errors can be detrimental to the performance of quantum error correction protocols.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Effect of quasiparticles on the parameters of a gap-engineered transmon

    cond-mat.supr-con 2025-07 conditional novelty 6.0 of 10

    In a gap-engineered transmon, quasiparticles cause a resonant enhancement of frequency shift and relaxation when the qubit frequency matches the gap difference, giving a new spectroscopic probe.

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