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Millisecond charge-parity fluctuations and induced decoherence in a superconducting transmon qubit

机译:超导跨量子比特中的毫秒电荷奇偶性波动和诱导的退相干

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摘要

The tunnelling of quasiparticles across Josephson junctions in superconducting quantum circuits is an intrinsic decoherence mechanism for qubit degrees of freedom. Understanding the limits imposed by quasiparticle tunnelling on qubit relaxation and dephasing is of theoretical and experimental interest, particularly as improved understanding of extrinsic mechanisms has allowed crossing the 100 microsecond mark in transmon-type charge qubits. Here, by integrating recent developments in high-fidelity qubit readout and feedback control in circuit quantum electrodynamics, we transform a state-of-the-art transmon into its own real-time charge-parity detector. We directly measure the tunnelling of quasiparticles across the single junction and isolate the contribution of this tunnelling to qubit relaxation and dephasing, without reliance on theory. The millisecond timescales measured demonstrate that quasiparticle tunnelling does not presently bottleneck transmon qubit coherence, leaving room for yet another order of magnitude increase.
机译:准粒子穿越超导量子电路中约瑟夫逊结的隧穿是量子位自由度的固有退相干机制。理解准粒子隧穿对量子位弛豫和移相施加的限制具有理论和实验意义,尤其是随着对非本征机制的更好理解,跨界型电荷量子位跨过了100微秒的标记。在这里,通过整合高保真量子位读出和电路量子电动力学中的反馈控制的最新发展,我们将最先进的Transmon转换为自己的实时电荷奇偶检测器。我们在不依赖理论的情况下,直接测量了穿过单个结的准粒子的隧穿,并隔离了该隧穿对量子位弛豫和移相的贡献。所测量的毫秒级时间尺度表明,准粒子隧穿目前还不存在瓶颈跨域量子比特相干性,为再增加一个数量级增加空间。

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