声子带隙中超导量子比特的非马尔可夫动力学

IF 17.6 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Nature Physics Pub Date : 2025-01-07 DOI:10.1038/s41567-024-02740-5
Mutasem Odeh, Kadircan Godeneli, Eric Li, Rohin Tangirala, Haoxin Zhou, Xueyue Zhang, Zi-Huai Zhang, Alp Sipahigil
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引用次数: 0

摘要

减少量子计算机中的退相干可以迅速降低从物理量子位构建逻辑量子位所需的开销。在固态系统中,一类被称为双能级系统的缺陷是退相干的主要来源。目前,超导量子比特实验通过使用大的器件尺寸来减少双能级系统的耗散。然而,这种方法只能提供部分保护,并导致量子位大小和耗散之间的权衡。在这项工作中,我们使用声子来设计量子比特与周围两级系统之间的相互作用。我们在声子带隙超材料上制造了一个超导量子比特,该量子比特抑制了由两能级系统介导的声子发射。双能级系统的声子工程浴显示出寿命的增加,并影响量子比特的热化动力学。在声子带隙内,我们观察到非马尔可夫量子比特行为的出现。结合量子比特的小型化,我们的方法可以大大延长量子比特的弛豫时间。
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Non-Markovian dynamics of a superconducting qubit in a phononic bandgap

Reducing decoherence in quantum computers rapidly decreases the overhead needed to construct a logical qubit from physical qubits. In solid-state systems, a class of defects known as two-level systems is a major source of decoherence. Currently, superconducting qubit experiments reduce dissipation due to the two-level systems by using large device dimensions. However, this approach only provides partial protection and results in a trade-off between qubit size and dissipation. In this work, we instead engineer the interactions between a qubit and the surrounding two-level systems using phononics. We fabricate a superconducting qubit on a phononic-bandgap metamaterial that suppresses phonon emission mediated by the two-level systems. The phonon-engineered bath of two-level systems shows increased lifetime and affects the thermalization dynamics of the qubit. Within the phononic bandgap, we observe the emergence of a non-Markovian qubit behaviour. Combined with qubit miniaturization, our approach could substantially extend the qubit relaxation times.

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来源期刊
Nature Physics
Nature Physics 物理-物理:综合
CiteScore
30.40
自引率
2.00%
发文量
349
审稿时长
4-8 weeks
期刊介绍: Nature Physics is dedicated to publishing top-tier original research in physics with a fair and rigorous review process. It provides high visibility and access to a broad readership, maintaining high standards in copy editing and production, ensuring rapid publication, and maintaining independence from academic societies and other vested interests. The journal presents two main research paper formats: Letters and Articles. Alongside primary research, Nature Physics serves as a central source for valuable information within the physics community through Review Articles, News & Views, Research Highlights covering crucial developments across the physics literature, Commentaries, Book Reviews, and Correspondence.
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