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Decoherence in Josephson qubits due to charge and spin fluctuators

Decoherence in Josephson qubits due to charge and spin fluctuators
电荷和自旋涨落导致约瑟夫森量子位的退相干
批准号:
255576543
负责人:
Professor Dr. Gerd Schön
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
2014
资助国家:
德国
项目状态:
已结题
起止时间:
2013-12-31 至 2017-12-31

项目摘要

项目成果

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中文摘要
翻译
在过去的十年里,量子电路的相干控制水平,特别是约瑟夫森结,已经有了很大的进步。退相干的主要来源已被确定和/或抑制通过仔细的电路工程。因此,约瑟夫森量子比特(qubit)的相干时间通常达到数十甚至数百微秒。其余的噪音来源是微妙的。它们主要与器件所用材料的性质或电路环境中未能达到热平衡有关。对这些影响的调查是本提案的主要议题。我们的目标是双重的。一方面,我们希望为进一步提高量子电路的相干时间的目标做出贡献。另一方面,我们的目标是更好地理解材料特性,这是由于量子比特技术的进步而变得容易获得的。具体来说,我们将研究:(i)约瑟夫森结中的二能级系统(TLS)的特性及其在介电损耗,电荷噪声和临界电流噪声方面的特征。我们将研究量子位弛豫的机制,由于耦合到TLS和TLS在固态环境中的内在耗散。 我们还将研究TSL之间的相互作用的影响。结合约瑟夫森量子比特噪声光谱学的最新进展,我们希望能够推进对TLS微观性质的理解。(ii)顺磁自旋对表面和界面的影响。它们似乎是观测到的磁通量的1/f噪声的原因。我们将研究自旋扩散,自旋阻尼和自旋玻璃物理的相互作用。目的是了解磁通量噪声的统计特性,即,1/f类功率谱的频率和温度依赖性以及非高斯特性(噪声的噪声)。
英文摘要
The level of coherent control of quantum circuits in general and Josephson junctions in particular has advanced greatly in the last decade. Major sources of decoherence have been identified and/or suppressed by means of careful circuit engineering. As a consequence, the coherence times of Josephson quantum bits (qubits) reach routinely tens to even hundreds of microseconds. The remaining sources of noise are subtle. They are mostly related to properties of the materials used for the devices or to the failure to reach thermal equilibrium in the circuit surroundings. Investigation of these effects is the main subject of the present proposal. Our aims are twofold. On one hand, we want to contribute to the goal of further enhancing the coherence times of quantum circuits. On the other hand, we aim at a better understanding of material properties, which became accessible due to the advances in qubit technology. Specifically we are going to investigate: (i) The properties of two-level systems (TLS) in Josephson junctions and their signatures in dielectric losses, charge noise, and critical current noise. We will study the mechanisms of qubit relaxation due to the coupling to the TLS and those of the intrinsic dissipation of the TLS in the solid state environment. We will also investigate the effects of interactions between the TSL. In combination with the recent advances in noise spectroscopy with Josephson qubits we hope to be able to advance the understanding of the microscopic nature of the TLS.(ii) The effects of paramagnetic spins on surfaces and interfaces. They appear to be responsible for the observed 1/f noise of the magnetic flux. We will study the interplay of spin-diffusion, spin damping, and spin glass physics. The aim is to understand the statistical properties of the magnetic flux noise, i.e., the frequency and temperature dependence of the 1/f-like power spectrum as well as the non-Gaussian properties (noise of noise).
期刊论文(9)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1088/2058-9565/aad5ba
发表时间: 2018-04
期刊: Quantum Science and Technology
影响因子: 6.7
作者: [Jan-Michael Reiner;S. Zanker;I. Schwenk;J. Leppäkangas;F. Wilhelm-Mauch;G. Schön;M. Marthaler]
通讯作者: Jan-Michael Reiner;S. Zanker;I. Schwenk;J. Leppäkangas;F. Wilhelm-Mauch;G. Schön;M. Marthaler
Qubit dephasing due to quasiparticle tunneling
准粒子隧道效应引起的量子位相移
DOI: 10.1103/physrevb.91.174504
发表时间: 2015
期刊: Physical Review B
影响因子: 3.7
作者: [S. Zanker, M. Marthaler]
通讯作者: M. Marthaler
Rabi noise spectroscopy of individual two-level tunneling defects
单个两级隧道缺陷的拉比噪声光谱
DOI: 10.1103/physrevb.95.241409
发表时间: 2017
期刊: Physical Review B
影响因子: 3.7
作者: [S. Matityahu, J. Lisenfeld, A. Bilmes, A. Shnirman, G. Weiss, A. V. Ustinov, M. Schechter]
通讯作者: M. Schechter
Transport signatures of a Majorana qubit and read-out-induced dephasing
马约拉纳量子位的传输签名和读出引起的相移
DOI: 10.1088/1367-2630/ab1431
发表时间: 2019-01
期刊: New Journal of Physics
影响因子: 3.3
作者: [Qin Lupei, Li Xin Qi, Shnirman Alex, er, Schoen Gerd]
通讯作者: Schoen Gerd
共 8 条
    Fluctuations and Correlations in Semiconductor Spintronics
    Effects of spin-orbit interaction and geometric phases on quantum coherent spin transport and spin manipulations in semiconductor quantum dots and devices
    Quanten-Informationsverarbeitung in mesoskopischen Systemen
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