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Synchronous Detection of Cosmic Rays and Correlated Errors in Superconducting Qubit Arrays

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arxiv 2402.03208 v1 pith:XNVQIBYV submitted 2024-02-05 quant-ph hep-exnucl-exphysics.ins-det

Synchronous Detection of Cosmic Rays and Correlated Errors in Superconducting Qubit Arrays

classification quant-ph hep-exnucl-exphysics.ins-det
keywords cosmicrayscorrelatederrorsqubitqubitssuperconductingchip
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

Quantum information processing at scale will require sufficiently stable and long-lived qubits, likely enabled by error-correction codes. Several recent superconducting-qubit experiments, however, reported observing intermittent spatiotemporally correlated errors that would be problematic for conventional codes, with ionizing radiation being a likely cause. Here, we directly measured the cosmic-ray contribution to spatiotemporally correlated qubit errors. We accomplished this by synchronously monitoring cosmic-ray detectors and qubit energy-relaxation dynamics of 10 transmon qubits distributed across a 5x5x0.35 mm$^3$ silicon chip. Cosmic rays caused correlated errors at a rate of 1/(10 min), accounting for 17$\pm$1% of all such events. Our qubits responded to essentially all of the cosmic rays and their secondary particles incident on the chip, consistent with the independently measured arrival flux. Moreover, we observed that the landscape of the superconducting gap in proximity to the Josephson junctions dramatically impacts the qubit response to cosmic rays. Given the practical difficulties associated with shielding cosmic rays, our results indicate the importance of radiation hardening -- for example, superconducting gap engineering -- to the realization of robust quantum error correction.

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Cited by 2 Pith papers

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

  1. Radiopurity material assays and radiation exposure projections for superconducting qubit measurements at SNOLAB

    physics.ins-det 2026-07 conditional novelty 6.0

    Background Monte Carlo plus material assays predict under one millihertz per silicon qubit chip in SNOLAB's CUTE cryostat, with ~10 eV deposits able to cause correlated multi-qubit errors.

  2. Measuring quasiparticle dynamics for particle impact reconstruction in a superconducting qubit chip

    quant-ph 2026-04 unverdicted novelty 6.0

    A statistical framework models quasiparticle recombination and trapping in transmon qubits after particle impacts, enabling energy reconstruction of impacts through phonon-linked correlated relaxations that match Mont...