优化Rydberg门的逻辑量子比特性能

IF 11 Q1 PHYSICS, APPLIED
Sven Jandura, J. Thompson, G. Pupillo
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引用次数: 13

摘要

鲁棒栅极序列被广泛用于降低栅极操作对实验缺陷的敏感性。通常,优化使平均门误差最小化,然而,最近在量子纠错方面的工作表明,编码逻辑量子比特的性能不仅对平均错误率敏感,而且对发生的错误类型也敏感。在这里,我们提出了中性原子量子比特的Rydberg封锁门家族,它们对两个常见的主要缺陷:强度不均匀性和多普勒频移具有鲁棒性。对于中等或较大的缺陷,这些栅极优于现有的栅极。我们还考虑了这些门在基于亚稳态$~^{171}$Yb的擦除偏置量子比特的背景下的逻辑性能。在这种情况下,我们观察到即使非常小的缺陷值,鲁棒门也优于现有门,因为它们保持了这些量子比特的擦除误差的固有大偏差。这些结果显著降低了用中性原子实现容错量子计算的激光稳定性和原子温度要求。优化逻辑量子比特性能的方法可以应用于其他量子比特平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimizing Rydberg Gates for Logical-Qubit Performance
Robust gate sequences are widely used to reduce the sensitivity of gate operations to experimental imperfections. Typically, the optimization minimizes the average gate error, however, recent work in quantum error correction has demonstrated that the performance of encoded logical qubits is sensitive to not only the average error rate, but also the type of errors that occur. Here, we present a family of Rydberg blockade gates for neutral atom qubits that are robust against two common, major imperfections: intensity inhomogeneity and Doppler shifts. These gates outperform existing gates for moderate or large imperfections. We also consider the logical performance of these gates in the context of an erasure-biased qubit based on metastable $~^{171}$Yb. In this case, we observe that the robust gates outperform existing gates for even very small values of the imperfections, because they maintain the native large bias towards erasure errors for these qubits. These results significantly reduce the laser stability and atomic temperature requirements to achieve fault-tolerant quantum computing with neutral atoms. The approach of optimizing gates for logical qubit performance may be applied to other qubit platforms.
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来源期刊
CiteScore
14.60
自引率
0.00%
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