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Saving superconducting quantum processors from qubit decay and correlated errors generated by gamma and cosmic rays

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arxiv 2012.06137 v3 pith:7DFFP4ZJ submitted 2020-12-11 quant-ph cond-mat.supr-con

Saving superconducting quantum processors from qubit decay and correlated errors generated by gamma and cosmic rays

classification quant-ph cond-mat.supr-con
keywords energyqubitaffectscorrelatedcosmicdecayerrorerrors
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Error-corrected quantum computers can only work if errors are small and uncorrelated. Here I show how cosmic rays or stray background radiation affects superconducting qubits by modeling the phonon to electron/quasiparticle down-conversion physics. For present designs, the model predicts about 57\% of the radiation energy breaks Cooper pairs into quasiparticles, which then vigorously suppress the qubit energy relaxation time ($T_1 \sim$ 160 ns) over a large area (cm) and for a long time (ms). Such large and correlated decay kills error correction. Using this quantitative model, I show how this energy can be channeled away from the qubit so that this error mechanism can be reduced by many orders of magnitude. I also comment on how this affects other solid-state qubits.

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Cited by 2 Pith papers

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

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    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...