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Coherence-enhanced phase-dependent dissipation in long SNS Josephson junctions: Revealing Andreev bound state dynamics

机译:长SNS Josephson结的连贯性 - 增强相位依赖的耗散:揭示Andreev绑定状态动态

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摘要

One of the best known causes of dissipation in ac-driven quantum systems stems from photon absorption causing transitions between levels. Dissipation can also be caused by the retarded response to the time-dependent excitation, and in general gives insight into the system's relaxation times and mechanisms. Here we address the dissipation in a mesoscopic normal wire with superconducting contacts, that sustains a dissipationless supercurrent at zero frequency and that may therefore naively be expected to remain dissipationless at a frequency lower than the superconducting gap. We probe the high-frequency linear response of such a normal metal/superconductor (NS) ring to a time-dependent flux by coupling it to a highly sensitive multimode microwave resonator. Far from being the simple, dissipationless derivative of the supercurrent-versus-phase relation, the ring's ac susceptibility also displays a dissipative component whose phase dependence is a signature of the dynamical processes occurring within the Andreev spectrum. We show how dissipation is driven by the competition between two mechanisms. The first is the relaxation of the Andreev level distribution function, while the second corresponds to microwave-induced transitions within the spectrum. Depending on the relative strength of those contributions, dissipation can be maximal at pi a phase at which the proximity-induced minigap closes, or can be maximal near pi/2, a phase at which the dc supercurrent is maximal. We also find that the dissipative response paradoxically increases at low temperature and can even exceed the normal-state conductance. The results are successfully confronted with theoretical predictions of the Kubo linear response and time-dependent Usadel equations, derived from the Bogoliubov-de Gennes Hamiltonian describing the SNS junction. These experiments thus demonstrate the power of the ac susceptibility measurement of individual hybrid mesoscopic systems in probing in a controlled way the quantum dynamics of Andreev bound states. By spanning different physical regimes, our experiments provide unique access to inelastic scattering and spectroscopy of an isolated quantum coherent system, and reveal the associated relaxation times. This technique should be a tool of choice to investigate topological superconductivity and detect the topological protection of edge states.
机译:交流量子系统中的最佳已知耗散原因之一源自导致水平之间的过渡的光子吸收。耗散也可能是由于对时间依赖激发的延迟反应引起的,并且通常会介绍系统的放松时间和机制。在这里,我们在具有超导触点的介镜正常线中解决了弱势触点的耗散,其在零频率下维持不可棘散的超电流,因此可以在低于超导间隙的频率下静止地保持耗散。通过将其耦合到高度敏感的多模微波谐振器,我们探测这种普通金属/超导体(NS)环的高频线性响应到时间依赖性通量。远离超级电流与相位关系的简单折射衍生物,环的AC易感性也显示出耗散组分,其相位依赖性是在AndreeV频谱内发生的动态过程的签名。我们展示了两种机制之间的竞争如何耗散。首先是andreev水平分布函数的放松,而第二个是对应于光谱内的微波诱导的转换。根据这些贡献的相对强度,散热可以在pi的pi中最大,接近诱导的minigap关闭,或者可以是最大的pi / 2附近的阶段,该阶段的DC超级电流最大的相位。我们还发现散射响应在低温下矛盾的响应增加,甚至可以超过正常状态电导率。结果成功地遇到了Kubo线性响应和时间依赖的USADEL方程的理论预测,来自于描述SNS交界处的Bogoliubov-de Gennesian。因此,这些实验表明了在控制方式探测中的单个混合介面系统的AC敏感度测量的功率,以控制方式探讨了Andreev绑定状态的量子动态。通过跨越不同的物理制度,我们的实验提供了独特的进入孤立量子相干系统的无弹性散射和光谱学,并揭示了相关的松弛时间。这种技术应该是调查拓扑超导性并检测边缘状态的拓扑保护的选择工具。

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  • 来源
    《Physical review, B》 |2018年第18期|共14页
  • 作者单位

    Univ Paris 11 CNRS LPS UMR 8502 F-91405 Orsay France;

    Univ Paris 11 CNRS LPS UMR 8502 F-91405 Orsay France;

    Univ Paris 11 CNRS LPS UMR 8502 F-91405 Orsay France;

    Univ Paris 11 CNRS LPS UMR 8502 F-91405 Orsay France;

    Univ Paris 11 CNRS LPS UMR 8502 F-91405 Orsay France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 固体物理学;
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