Generation of genuine entanglement up to 51 superconducting qubits

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作者
Sirui Cao
Bujiao Wu
Fusheng Chen
Ming Gong
Yulin Wu
Yangsen Ye
Chen Zha
Haoran Qian
Chong Ying
Shaojun Guo
Qingling Zhu
He-Liang Huang
Youwei Zhao
Shaowei Li
Shiyu Wang
Jiale Yu
Daojin Fan
Dachao Wu
Hong Su
Hui Deng
Hao Rong
Yuan Li
Kaili Zhang
Tung-Hsun Chung
Futian Liang
Jin Lin
Yu Xu
Lihua Sun
Cheng Guo
Na Li
Yong-Heng Huo
Cheng-Zhi Peng
Chao-Yang Lu
Xiao Yuan
Xiaobo Zhu
Jian-Wei Pan
机构
[1] University of Science and Technology of China,Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences
[2] University of Science and Technology of China,Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics
[3] University of Science and Technology of China,Hefei National Laboratory
[4] Peking University,Center on Frontiers of Computing Studies
[5] Peking University,School of Computer Science
来源
Nature | 2023年 / 619卷
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摘要
Scalable generation of genuine multipartite entanglement with an increasing number of qubits is important for both fundamental interest and practical use in quantum-information technologies1,2. On the one hand, multipartite entanglement shows a strong contradiction between the prediction of quantum mechanics and local realization and can be used for the study of quantum-to-classical transition3,4. On the other hand, realizing large-scale entanglement is a benchmark for the quality and controllability of the quantum system and is essential for realizing universal quantum computing5–8. However, scalable generation of genuine multipartite entanglement on a state-of-the-art quantum device can be challenging, requiring accurate quantum gates and efficient verification protocols. Here we show a scalable approach for preparing and verifying intermediate-scale genuine entanglement on a 66-qubit superconducting quantum processor. We used high-fidelity parallel quantum gates and optimized the fidelitites of parallel single- and two-qubit gates to be 99.91% and 99.05%, respectively. With efficient randomized fidelity estimation9, we realized 51-qubit one-dimensional and 30-qubit two-dimensional cluster states and achieved fidelities of 0.637 ± 0.030 and 0.671 ± 0.006, respectively. On the basis of high-fidelity cluster states, we further show a proof-of-principle realization of measurement-based variational quantum eigensolver10 for perturbed planar codes. Our work provides a feasible approach for preparing and verifying entanglement with a few hundred qubits, enabling medium-scale quantum computing with superconducting quantum systems.
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页码:738 / 742
页数:4
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