Charge-parity switching effects and optimisation of transmon-qubit design parameters

IF 6.6 1区 物理与天体物理 Q1 PHYSICS, APPLIED npj Quantum Information Pub Date : 2024-07-15 DOI:10.1038/s41534-024-00860-7
Miha Papič, Jani Tuorila, Adrian Auer, Inés de Vega, Amin Hosseinkhani
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Abstract

Enhancing the performance of noisy quantum processors requires improving our understanding of error mechanisms and the ways to overcome them. A judicious selection of qubit design parameters plays a pivotal role in improving the performance of quantum processors. In this study, we identify optimal ranges for qubit design parameters, grounded in comprehensive noise modeling. To this end, we also analyze the effect of a charge-parity switch caused by quasiparticles on a two-qubit gate. Due to the utilization of the second excited state of a transmon, where the charge dispersion is significantly larger, a charge-parity switch will affect the conditional phase of the two-qubit gate. We derive an analytical expression for the infidelity of a diabatic controlled-Z gate and see effects of similar magnitude in adiabatic controlled-phase gates in the tunable coupler architecture. Moreover, we show that the effect of a charge-parity switch can be the dominant quasiparticle-related error source of a two-qubit gate. We also demonstrate that charge-parity switches induce a residual longitudinal interaction between qubits in a tunable-coupler circuit. Furthermore, we introduce a performance metric for quantum circuit execution, encompassing the fidelity and number of single- and two-qubit gates in an algorithm, as well as the state preparation fidelity. This comprehensive metric, coupled with a detailed noise model, enables us to determine an optimal range for the qubit design parameters, as confirmed by numerical simulation. Our systematic analysis offers insights and serves as a guiding framework for the development of the next generation of transmon-based quantum processors.

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电荷奇偶性开关效应与跨子-量子比特设计参数的优化
要提高噪声量子处理器的性能,就必须加深我们对误差机制和克服误差方法的理解。明智地选择量子比特设计参数对提高量子处理器的性能起着关键作用。在这项研究中,我们以全面的噪声建模为基础,确定了量子位设计参数的最佳范围。为此,我们还分析了由准粒子引起的电荷奇偶性开关对双量子比特栅极的影响。由于利用了电荷色散明显更大的反电子子第二激发态,电荷奇偶性开关将影响双量子比特门的条件相位。我们推导出了非绝热受控 Z 门不保真度的分析表达式,并在可调耦合器架构的非绝热受控相位门中看到了类似程度的影响。此外,我们还证明了电荷奇偶性开关的效应可能是双量子比特门的主要类粒子相关误差源。我们还证明,电荷奇偶开关会诱发可调耦合器电路中量子比特之间的残余纵向相互作用。此外,我们还介绍了量子电路执行的性能指标,包括算法中单量子比特和双量子比特门的保真度和数量,以及状态准备的保真度。这一综合指标与详细的噪声模型相结合,使我们能够确定量子比特设计参数的最佳范围,并通过数值模拟加以证实。我们的系统分析为开发下一代基于跨子的量子处理器提供了见解和指导框架。
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来源期刊
npj Quantum Information
npj Quantum Information Computer Science-Computer Science (miscellaneous)
CiteScore
13.70
自引率
3.90%
发文量
130
审稿时长
29 weeks
期刊介绍: The scope of npj Quantum Information spans across all relevant disciplines, fields, approaches and levels and so considers outstanding work ranging from fundamental research to applications and technologies.
期刊最新文献
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