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在超导量子处理器中以速度极限运行的具有最大中间泄漏的高保真受控Z门。

High-Fidelity Controlled-Z Gate with Maximal Intermediate Leakage Operating at the Speed Limit in a Superconducting Quantum Processor.

作者信息

Negîrneac V, Ali H, Muthusubramanian N, Battistel F, Sagastizabal R, Moreira M S, Marques J F, Vlothuizen W J, Beekman M, Zachariadis C, Haider N, Bruno A, DiCarlo L

机构信息

QuTech, Delft University of Technology, P.O. Box 5046, 2600 GA Delft, Netherlands.

Instituto Superior Técnico, Universidade de Lisboa, 1049-001 Lisbon, Portugal.

出版信息

Phys Rev Lett. 2021 Jun 4;126(22):220502. doi: 10.1103/PhysRevLett.126.220502.

Abstract

Simple tuneup of fast two-qubit gates is essential for the scaling of quantum processors. We introduce the sudden variant (SNZ) of the net zero scheme realizing controlled-Z (CZ) gates by flux control of transmon frequency. SNZ CZ gates realized in a multitransmon processor operate at the speed limit of transverse coupling between computational and noncomputational states by maximizing intermediate leakage. Beyond speed, the key advantage of SNZ is tuneup simplicity, owing to the regular structure of conditional phase and leakage as a function of two control parameters. SNZ is compatible with scalable schemes for quantum error correction and adaptable to generalized conditional-phase gates useful in intermediate-scale applications.

摘要

对快速双量子比特门进行简单的优化调整对于量子处理器的扩展至关重要。我们引入了净零方案的突变变体(SNZ),通过对跨导量子比特频率进行磁通控制来实现受控Z(CZ)门。在多跨导量子比特处理器中实现的SNZ CZ门通过最大化中间泄漏,以计算态和非计算态之间横向耦合的速度极限运行。除了速度优势外,SNZ的关键优势在于调整简单,这得益于条件相位和泄漏作为两个控制参数的函数所具有的规则结构。SNZ与用于量子纠错的可扩展方案兼容,并且适用于中等规模应用中有用的广义条件相位门。

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