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Electronic decoherence of two-level systems in a Josephson junction

机译:约瑟夫森结中两能级系统的电子退相干

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摘要

The sensitivity of superconducting qubits allows for spectroscopy and coherence measurements on individual two-level systems present in the disordered tunnel barrier of an Al/AlO_x/Al Josephson junction. We report experimental evidence for the decoherence of two-level systems by Bogoliubov quasiparticles leaking into the insulating AlO_x barrier. We control the density of quasiparticles in the junction electrodes either by the sample temperature or by injecting them using an on-chip dc superconducting quantum interference device driven to its resistive state. The decoherence rates were measured by observing the two-level system's quantum state evolving under application of resonant microwave pulses and were found to increase linearly with quasiparticle density, in agreement with theory. This interaction with electronic states provides a noise and decoherence mechanism that is relevant for various microfabricated devices such as qubits, single-electron transistors, and field-effect transistors. The presented experiments also offer a possibility to determine the location of the probed two-level systems across the tunnel barrier, providing clues about the fabrication step in which they emerge.
机译:超导量子位的灵敏度允许对存在于Al / AlOx / Al Josephson结的无序隧道势垒中的各个二级系统进行光谱学和相干性测量。我们报告了通过渗入绝缘AlO_x势垒的Bogoliubov准粒子对两能级系统进行消相干的实验证据。我们通过样品温度或通过使用驱动至其电阻状态的片上直流超导量子干涉装置注入准离子来控制连接电极中准粒子的密度。通过观察在共振微波脉冲作用下两能级系统的量子态来测量去相干速率,发现与理论相符,其随着准粒子密度线性增加。与电子状态的这种相互作用提供了一种噪声和去相干机制,该机制与各种微型设备(例如量子位,单电子晶体管和场效应晶体管)有关。提出的实验还提供了确定跨隧道屏障探测的二级系统的位置的可能性,提供了有关它们出现的制造步骤的线索。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2017年第6期|064504.1-064504.12|共12页
  • 作者单位

    Physikalisches Institut, Karlsruhe Institute of Technology, 76131 Karlsruhe, Germany;

    Institut fuer Theoretische Festkoerperphysik, Karlsruhe Institute of Technology, 76131 Karlsruhe, Germany;

    Institut fuer Theoretische Festkoerperphysik, Karlsruhe Institute of Technology, 76131 Karlsruhe, Germany;

    Institut fuer Theoretische Festkoerperphysik, Karlsruhe Institute of Technology, 76131 Karlsruhe, Germany;

    Institut fuer Theoretische Festkoerperphysik, Karlsruhe Institute of Technology, 76131 Karlsruhe, Germany;

    Physikalisches Institut, Karlsruhe Institute of Technology, 76131 Karlsruhe, Germany;

    Physikalisches Institut, Karlsruhe Institute of Technology, 76131 Karlsruhe, Germany,Russian Quantum Center, National University of Science and Technology MISIS, Moscow 119049, Russia;

    Physikalisches Institut, Karlsruhe Institute of Technology, 76131 Karlsruhe, Germany;

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