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使用超导微波谐振器进行材料损耗测量。

Materials loss measurements using superconducting microwave resonators.

作者信息

McRae C R H, Wang H, Gao J, Vissers M R, Brecht T, Dunsworth A, Pappas D P, Mutus J

机构信息

Department of Physics, University of Colorado, Boulder, Colorado 80309, USA.

National Institute of Standards and Technology, Boulder, Colorado 80305, USA.

出版信息

Rev Sci Instrum. 2020 Sep 1;91(9):091101. doi: 10.1063/5.0017378.

Abstract

The performance of superconducting circuits for quantum computing is limited by materials losses. In particular, coherence times are typically bounded by two-level system (TLS) losses at single photon powers and millikelvin temperatures. The identification of low loss fabrication techniques, materials, and thin film dielectrics is critical to achieving scalable architectures for superconducting quantum computing. Superconducting microwave resonators provide a convenient qubit proxy for assessing performance and studying TLS loss and other mechanisms relevant to superconducting circuits such as non-equilibrium quasiparticles and magnetic flux vortices. In this review article, we provide an overview of considerations for designing accurate resonator experiments to characterize loss, including applicable types of losses, cryogenic setup, device design, and methods for extracting material and interface losses, summarizing techniques that have been evolving for over two decades. Results from measurements of a wide variety of materials and processes are also summarized. Finally, we present recommendations for the reporting of loss data from superconducting microwave resonators to facilitate materials comparisons across the field.

摘要

用于量子计算的超导电路性能受材料损耗限制。特别是,在单光子功率和毫开尔文温度下,相干时间通常受两能级系统(TLS)损耗的限制。识别低损耗制造技术、材料和薄膜电介质对于实现用于超导量子计算的可扩展架构至关重要。超导微波谐振器为评估性能以及研究与超导电路相关的TLS损耗和其他机制(如非平衡准粒子和磁通量涡旋)提供了一种方便的量子比特替代物。在这篇综述文章中,我们概述了设计精确的谐振器实验以表征损耗时需考虑的因素,包括适用的损耗类型、低温装置、器件设计以及提取材料和界面损耗的方法,总结了二十多年来不断发展的技术。还总结了对各种材料和工艺的测量结果。最后,我们提出了关于报告超导微波谐振器损耗数据的建议,以促进该领域材料之间的比较。

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