Phonon engineering of atomic-scale defects in superconducting quantum circuits

IF 11.7 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Science Advances Pub Date : 2024-09-13 DOI:10.1126/sciadv.ado6240
Mo Chen, John Clai Owens, Harald Putterman, Max Schäfer, Oskar Painter
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Abstract

Noise within solid-state systems at low temperatures can typically be traced back to material defects. In amorphous materials, these defects are broadly described by the tunneling two-level systems (TLSs) model. TLS have recently taken on further relevance in quantum computing because they dominate the coherence limit of superconducting quantum circuits. Efforts to mitigate TLS impacts have thus far focused on circuit design, material selection, and surface treatments. Our work takes an approach that directly modifies TLS properties. This is achieved by creating an acoustic bandgap that suppresses all microwave-frequency phonons around the operating frequency of a transmon qubit. For embedded TLS strongly coupled to the transmon qubit, we measure a pronounced increase in relaxation time by two orders of magnitude, with the longest T1 time exceeding 5 milliseconds. Our work opens avenues for studying the physics of highly coherent TLS and methods for mitigating noise within solid-state quantum devices.
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超导量子电路中原子尺度缺陷的声子工程学
固态系统在低温下产生的噪声通常可以追溯到材料缺陷。在非晶材料中,这些缺陷大致可以用隧道两级系统(TLS)模型来描述。由于 TLS 主导了超导量子电路的相干极限,因此它最近在量子计算中的意义更加重大。迄今为止,减轻 TLS 影响的努力主要集中在电路设计、材料选择和表面处理方面。我们的工作采用了一种直接改变 TLS 特性的方法。这是通过创建声带隙来实现的,声带隙能抑制传声量子比特工作频率周围的所有微波频率声子。对于与跨mon qubit强耦合的嵌入式 TLS,我们测量到弛豫时间明显增加了两个数量级,最长的 T1 时间超过了 5 毫秒。我们的工作为研究高度相干 TLS 的物理学以及固态量子器件中的噪声缓解方法开辟了道路。
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来源期刊
Science Advances
Science Advances 综合性期刊-综合性期刊
CiteScore
21.40
自引率
1.50%
发文量
1937
审稿时长
29 weeks
期刊介绍: Science Advances, an open-access journal by AAAS, publishes impactful research in diverse scientific areas. It aims for fair, fast, and expert peer review, providing freely accessible research to readers. Led by distinguished scientists, the journal supports AAAS's mission by extending Science magazine's capacity to identify and promote significant advances. Evolving digital publishing technologies play a crucial role in advancing AAAS's global mission for science communication and benefitting humankind.
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