超导量子比特阵列中声子介导的类粒子中毒建模

IF 3.7 2区 物理与天体物理 Q1 Physics and Astronomy Physical Review B Pub Date : 2024-07-30 DOI:10.1103/physrevb.110.024519
E. Yelton, C. P. Larson, V. Iaia, K. Dodge, G. La Magna, P. G. Baity, I. V. Pechenezhskiy, R. McDermott, N. A. Kurinsky, G. Catelani, B. L. T. Plourde
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引用次数: 0

摘要

电离辐射对超导量子比特芯片的影响所造成的相关误差是量子纠错的难题。这种撞击会在量子比特电极中产生准粒子(QP)激发,从而暂时大大降低量子比特的相干性。粒子撞击产生的许多高能声子在整个器件基底中高效传播,并以很高的概率产生准粒子,从而同时对阵列中的大部分量子比特造成误差。我们介绍了对撞击后的声子和准粒子动态进行数值模拟的综合策略。我们将模拟结果与声子介导的 QP 中毒实验测量结果进行了比较,并证明我们的建模捕捉到了各种声子下转换结构配置下 QP 中毒的空间和时间足迹。因此,我们为超导量子处理器在电离辐射环境下的运行指明了前进的道路。
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Modeling phonon-mediated quasiparticle poisoning in superconducting qubit arrays
Correlated errors caused by ionizing radiation impacting superconducting qubit chips are problematic for quantum error correction. Such impacts generate quasiparticle (QP) excitations in the qubit electrodes, which temporarily reduce qubit coherence significantly. The many energetic phonons produced by a particle impact travel efficiently throughout the device substrate and generate quasiparticles with high probability, thus causing errors on a large fraction of the qubits in an array simultaneously. We describe a comprehensive strategy for the numerical simulation of the phonon and quasiparticle dynamics in the aftermath of an impact. We compare the simulations with experimental measurements of phonon-mediated QP poisoning and demonstrate that our modeling captures the spatial and temporal footprint of the QP poisoning for various configurations of phonon down-conversion structures. We thus present a path forward for the operation of superconducting quantum processors in the presence of ionizing radiation.
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来源期刊
Physical Review B
Physical Review B 物理-物理:凝聚态物理
CiteScore
6.70
自引率
32.40%
发文量
0
审稿时长
3.0 months
期刊介绍: Physical Review B (PRB) is the world’s largest dedicated physics journal, publishing approximately 100 new, high-quality papers each week. The most highly cited journal in condensed matter physics, PRB provides outstanding depth and breadth of coverage, combined with unrivaled context and background for ongoing research by scientists worldwide. PRB covers the full range of condensed matter, materials physics, and related subfields, including: -Structure and phase transitions -Ferroelectrics and multiferroics -Disordered systems and alloys -Magnetism -Superconductivity -Electronic structure, photonics, and metamaterials -Semiconductors and mesoscopic systems -Surfaces, nanoscience, and two-dimensional materials -Topological states of matter
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