Modular Quantum Processor with an All-to-All Reconfigurable Router

被引:2
作者
Wu, Xuntao [1 ]
Yan, Haoxiong [1 ]
Andersson, Gustav [1 ]
Anferov, Alexander [1 ]
Chou, Ming-Han [1 ,2 ,5 ]
Conner, Christopher R. [1 ]
Grebel, Joel [1 ,6 ]
Joshi, Yash J. [1 ]
Li, Shiheng [1 ,2 ]
Miller, Jacob M. [1 ,2 ]
Povey, Rhys G. [1 ,2 ]
Qiao, Hong [1 ]
Cleland, Andrew N. [1 ,3 ,4 ]
机构
[1] Univ Chicago, Pritzker Sch Mol Engn, Chicago, IL 60637 USA
[2] Univ Chicago, Dept Phys, Chicago, IL 60637 USA
[3] Argonne Natl Lab, Ctr Mol Engn, Lemont, IL 60439 USA
[4] Argonne Natl Lab, Mat Sci Div, Lemont, IL 60439 USA
[5] AWS Ctr Quantum Comp, Pasadena, CA 91125 USA
[6] Ecole Normale Super Lyon, CNRS, Lab Phys, F-69342 Lyon, France
来源
PHYSICAL REVIEW X | 2024年 / 14卷 / 04期
基金
美国国家科学基金会;
关键词
INEQUALITY; SUPREMACY;
D O I
10.1103/PhysRevX.14.041030
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Superconducting qubits provide a promising approach to large-scale fault-tolerant quantum computing. However, qubit connectivity on a planar surface is typically restricted to only a few neighboring qubits. Achieving longer-range and more flexible connectivity, which is particularly appealing in light of recent developments in error-correcting codes, however, usually involves complex multilayer packaging and external cabling, which is resource intensive and can impose fidelity limitations. Here, we propose and realize a high-speed on-chip quantum processor that supports reconfigurable all-to-all coupling with a large on-off ratio. We implement the design in a four-node quantum processor, built with a modular design comprising a wiring substrate coupled to two separate qubit-bearing substrates, each including two singlequbit nodes. We use this device to demonstrate reconfigurable controlled-Z gates across all qubit pairs, with a benchmarked average fidelity of 96.00% + 0.08% and best fidelity of 97.14% + 0.07%, limited mainly by dephasing in the qubits. We also generate multiqubit entanglement, distributed across the separate modules, demonstrating GHZ-3 and GHZ-4 states with fidelities of 88.15%+0.24% and 75.18% + 0.11%, respectively. This approach promises efficient scaling to larger-scale quantum circuits and offers a pathway for implementing quantum algorithms and error-correction schemes that benefit from enhanced qubit connectivity.
引用
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页数:22
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