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Protecting superconducting qubits from phonon mediated decay

机译:保护超导Qubits介导介导的衰减

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摘要

For quantum computing to become fault tolerant, the underlying quantum bits must be effectively isolated from the noisy environment. It is well known that including an electromagnetic bandgap around the qubit operating frequency improves coherence for superconducting circuits. However, investigations of bandgaps to other environmental coupling mechanisms remain largely unexplored. Here, we present a method to enhance the coherence of superconducting circuits by introducing a phononic bandgap around the device operating frequency. The phononic bandgaps block resonant decay of defect states within the gapped frequency range, removing the electromagnetic coupling to phonons at the gap frequencies. We construct a multiscale model that derives the decrease in the density of states due to the bandgap and the resulting increase in defect state T-1 times. We demonstrate that emission rates from in-plane defect states can be suppressed by up to two orders of magnitude. We combine these simulations with theory for resonators operating in the continuous-wave regime and show that improvements in quality factors are expected by up to the enhancement in defect T-1 times. Furthermore, we use full master equation simulation to demonstrate the suppression of qubit energy relaxation even when interacting with 200 defect states. We conclude with an exploration of device implementation including tradeoffs between fabrication complexity and qubit performance.
机译:对于变量容错的量子计算,必须从嘈杂的环境中有效地隔离底层量子位。众所周知,包括围绕Qubit运营频率的电磁带隙来改善超导电路的相干性。然而,带隙对其他环境偶联机制的调查仍然很大程度上是未开发的。这里,我们介绍一种通过在设备工作频率周围引入声子带隙来增强超导电路的相干性。声波带隙块在撕开频率范围内的缺陷状态的谐振衰减,从而在间隙频率下移除到声子的电磁耦合。我们构建一种多尺度模型,可以由于带隙而导致状态的密度降低,并且导致缺陷状态T-1次的增加。我们证明,可以抑制来自面内缺陷状态的排放率多达两个数量级。我们将这些模拟与在连续波制度中运行的谐振器的理论结合起来,并表明,预期质量因素的改进达到缺陷T-1次的增强。此外,我们使用全主方程模拟来展示即使与200缺陷态交互时,也展示了Qubit能量松弛的抑制。我们结束了探索设备实施,包括制造复杂性和QUBit性能之间的权衡。

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  • 来源
    《Applied Physics Letters》 |2019年第20期|202601.1-202601.5|共5页
  • 作者单位

    Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    Lawrence Livermore Natl Lab Livermore CA 94550 USA;

    Lawrence Livermore Natl Lab Livermore CA 94550 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 22:17:45

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