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腔介导的远距离自旋之间的iSWAP振荡。

Cavity-mediated iSWAP oscillations between distant spins.

作者信息

Dijkema Jurgen, Xue Xiao, Harvey-Collard Patrick, Rimbach-Russ Maximilian, de Snoo Sander L, Zheng Guoji, Sammak Amir, Scappucci Giordano, Vandersypen Lieven M K

机构信息

QuTech and Kavli Institute of Nanoscience, Delft University of Technology, Delft, Netherlands.

QuTech and Netherlands Organization for Applied Scientific Research (TNO), Delft, Netherlands.

出版信息

Nat Phys. 2025;21(1):168-174. doi: 10.1038/s41567-024-02694-8. Epub 2024 Dec 9.

Abstract

Direct interactions between quantum particles naturally fall off with distance. However, future quantum computing architectures are likely to require interaction mechanisms between qubits across a range of length scales. In this work, we demonstrate a coherent interaction between two semiconductor spin qubits 250 μm apart using a superconducting resonator. This separation is several orders of magnitude larger than for the commonly used direct interaction mechanisms in this platform. We operate the system in a regime in which the resonator mediates a spin-spin coupling through virtual photons. We report the anti-phase oscillations of the populations of the two spins with controllable frequency. The observations are consistent with iSWAP oscillations of the spin qubits, and suggest that entangling operations are possible in 10 ns. These results hold promise for scalable networks of spin qubit modules on a chip.

摘要

量子粒子之间的直接相互作用会自然地随着距离减弱。然而,未来的量子计算架构可能需要在一系列长度尺度上实现量子比特之间的相互作用机制。在这项工作中,我们利用一个超导谐振器展示了两个相距250μm的半导体自旋量子比特之间的相干相互作用。这种间距比该平台中常用的直接相互作用机制大几个数量级。我们在谐振器通过虚光子介导自旋-自旋耦合的 regime 下操作该系统。我们报告了两个自旋的布居数的反相振荡,其频率可控。这些观测结果与自旋量子比特的iSWAP振荡一致,并表明在10 ns内进行纠缠操作是可能的。这些结果为芯片上自旋量子比特模块的可扩展网络带来了希望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/123f/11746143/124149396b5c/41567_2024_2694_Fig1_HTML.jpg

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