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Generation of genuine entanglement up to 51 superconducting qubits.
Cao, Sirui; Wu, Bujiao; Chen, Fusheng; Gong, Ming; Wu, Yulin; Ye, Yangsen; Zha, Chen; Qian, Haoran; Ying, Chong; Guo, Shaojun; Zhu, Qingling; Huang, He-Liang; Zhao, Youwei; Li, Shaowei; Wang, Shiyu; Yu, Jiale; Fan, Daojin; Wu, Dachao; Su, Hong; Deng, Hui; Rong, Hao; Li, Yuan; Zhang, Kaili; Chung, Tung-Hsun; Liang, Futian; Lin, Jin; Xu, Yu; Sun, Lihua; Guo, Cheng; Li, Na; Huo, Yong-Heng; Peng, Cheng-Zhi; Lu, Chao-Yang; Yuan, Xiao; Zhu, Xiaobo; Pan, Jian-Wei.
Afiliação
  • Cao S; Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei, China.
  • Wu B; Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Shanghai, China.
  • Chen F; Hefei National Laboratory, University of Science and Technology of China, Hefei, China.
  • Gong M; Center on Frontiers of Computing Studies, Peking University, Beijing, China.
  • Wu Y; School of Computer Science, Peking University, Beijing, China.
  • Ye Y; Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei, China.
  • Zha C; Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Shanghai, China.
  • Qian H; Hefei National Laboratory, University of Science and Technology of China, Hefei, China.
  • Ying C; Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei, China.
  • Guo S; Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Shanghai, China.
  • Zhu Q; Hefei National Laboratory, University of Science and Technology of China, Hefei, China.
  • Huang HL; Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei, China.
  • Zhao Y; Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Shanghai, China.
  • Li S; Hefei National Laboratory, University of Science and Technology of China, Hefei, China.
  • Wang S; Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei, China.
  • Yu J; Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Shanghai, China.
  • Fan D; Hefei National Laboratory, University of Science and Technology of China, Hefei, China.
  • Wu D; Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei, China.
  • Su H; Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Shanghai, China.
  • Deng H; Hefei National Laboratory, University of Science and Technology of China, Hefei, China.
  • Rong H; Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei, China.
  • Li Y; Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Shanghai, China.
  • Zhang K; Hefei National Laboratory, University of Science and Technology of China, Hefei, China.
  • Chung TH; Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei, China.
  • Liang F; Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Shanghai, China.
  • Lin J; Hefei National Laboratory, University of Science and Technology of China, Hefei, China.
  • Xu Y; Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei, China.
  • Sun L; Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Shanghai, China.
  • Guo C; Hefei National Laboratory, University of Science and Technology of China, Hefei, China.
  • Li N; Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei, China.
  • Huo YH; Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Shanghai, China.
  • Peng CZ; Hefei National Laboratory, University of Science and Technology of China, Hefei, China.
  • Lu CY; Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei, China.
  • Yuan X; Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Shanghai, China.
  • Zhu X; Hefei National Laboratory, University of Science and Technology of China, Hefei, China.
  • Pan JW; Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, University of Science and Technology of China, Hefei, China.
Nature ; 619(7971): 738-742, 2023 Jul.
Article em En | MEDLINE | ID: mdl-37438533
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.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article