论文标题

工程动态甜点,以保护Qubits免受1/$ f $噪声

Engineering Dynamical Sweet Spots to Protect Qubits from 1/$f$ Noise

论文作者

Huang, Ziwen, Mundada, Pranav S., Gyenis, András, Schuster, David I., Houck, Andrew A., Koch, Jens

论文摘要

保护超导量子位免受低频噪声的影响对于推进超导量子计算至关重要。根据周期性驱动场的应用,我们为工程动力学甜点开发了一项协议,以降低量子对低频噪声的敏感性。使用Floquet理论的框架,我们严格地证明,在驱动Qubit的准能量差异中有一些动态甜点的歧管。特别是,对于磁通量略微偏离了半通量量子的示例,我们预测纯dephasing的增强会增加三个数量级。我们以Floquet本特征状态为计算基础,我们表明,在保持动力学甜点操作的同时,可以实现高保真的单一和两倍的门。我们进一步确认,可以通过绝热将浮子状态映射回静态量子状态,然后应用标准测量技术来进行量子读数。我们的工作提供了一种直观的工具,可以以稳健的时间相关状态编码量子信息,并可以扩展到量子信息处理的替代体系结构。

Protecting superconducting qubits from low-frequency noise is essential for advancing superconducting quantum computation. Based on the application of a periodic drive field, we develop a protocol for engineering dynamical sweet spots which reduce the susceptibility of a qubit to low-frequency noise. Using the framework of Floquet theory, we prove rigorously that there are manifolds of dynamical sweet spots marked by extrema in the quasi-energy differences of the driven qubit. In particular, for the example of fluxonium biased slightly away from half a flux quantum, we predict an enhancement of pure-dephasing by three orders of magnitude. Employing the Floquet eigenstates as the computational basis, we show that high-fidelity single- and two-qubit gates can be implemented while maintaining dynamical sweet-spot operation. We further confirm that qubit readout can be performed by adiabatically mapping the Floquet states back to the static qubit states, and subsequently applying standard measurement techniques. Our work provides an intuitive tool to encode quantum information in robust, time-dependent states, and may be extended to alternative architectures for quantum information processing.

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