相干量子相位滑移在通量质子位中产生的退相现象

Mallika T. Randeria, Thomas M. Hazard, Agustin Di Paolo, Kate Azar, Max Hays, Leon Ding, Junyoung An, Michael Gingras, Bethany M. Niedzielski, Hannah Stickler, Jeffrey A. Grover, Jonilyn L. Yoder, Mollie E. Schwartz, William D. Oliver, Kyle Serniak
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摘要

所有约瑟夫森结(JJ)都会发生相位滑移,滑移率随结点阻抗的增加而增加。在由 JJ 阵列超导体组成的超导量子比特(如通氙)中,阵列中的相位滑移会导致退相干。特别是,单个阵列结的相位滑移过程会产生相干干扰,每个相位都会产生一个阿哈诺夫-卡舍相位,该相位取决于阵列岛的偏移电荷。这些相干量子相位滑移(CQPS)会扰动地改变量子比特的频率,因此阵列岛的电荷噪声会导致去相干。通过改变阵列结的阻抗,我们设计了一组通量鎓量子比特,其中 JJ 阵列内的预期相位滑移率会发生几个数量级的变化。我们对这些量子比特的相干时间进行了描述,并证明 CQPS 诱导的退相率缩放与我们的理论模型一致。此外,我们还对两个量子比特在 CQPS 或通量噪声主导的情况下进行了噪声频谱分析。我们发现,与 CQPS 去相干的噪声功率谱在低频时似乎是无特征的,而不是 1/f。数值模拟表明,这种行为与阵列内电荷奇偶性波动产生的电荷噪声是一致的。我们的发现为 JJ 阵列设计的权衡提供了广泛的信息,与采用 JJ 阵列超导体的众多超导量子比特设计相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Dephasing in Fluxonium Qubits from Coherent Quantum Phase Slips

Dephasing in Fluxonium Qubits from Coherent Quantum Phase Slips
Phase slips occur across all Josephson junctions (JJs) at a rate that increases with the impedance of the junction. In superconducting qubits composed of JJ-array superinductors—such as fluxonium—phase slips in the array can lead to decoherence. In particular, phase-slip processes at the individual array junctions can coherently interfere, each with an Aharonov-Casher phase that depends on the offset charges of the array islands. These coherent quantum phase slips (CQPS) perturbatively modify the qubit frequency, and therefore charge noise on the array islands will lead to dephasing. By varying the impedance of the array junctions, we design a set of fluxonium qubits in which the expected phase-slip rate within the JJ array changes by several orders of magnitude. We characterize the coherence times of these qubits and demonstrate that the scaling of CQPS-induced dephasing rates agrees with our theoretical model. Furthermore, we perform noise spectroscopy of two qubits in regimes dominated by either CQPS or flux noise. We find that the noise power spectrum associated with CQPS dephasing appears to be featureless at low frequencies and not 1/f. Numerical simulations indicate that this behavior is consistent with charge noise generated by charge-parity fluctuations within the array. Our findings broadly inform JJ-array-design trade-offs, relevant for the numerous superconducting-qubit designs employing JJ-array superinductors.
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