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A programmable qudit-based quantum processor.
Chi, Yulin; Huang, Jieshan; Zhang, Zhanchuan; Mao, Jun; Zhou, Zinan; Chen, Xiaojiong; Zhai, Chonghao; Bao, Jueming; Dai, Tianxiang; Yuan, Huihong; Zhang, Ming; Dai, Daoxin; Tang, Bo; Yang, Yan; Li, Zhihua; Ding, Yunhong; Oxenløwe, Leif K; Thompson, Mark G; O'Brien, Jeremy L; Li, Yan; Gong, Qihuang; Wang, Jianwei.
Afiliação
  • Chi Y; State Key Laboratory for Mesoscopic Physics, School of Physics, Peking University, 100871, Beijing, China.
  • Huang J; State Key Laboratory for Mesoscopic Physics, School of Physics, Peking University, 100871, Beijing, China.
  • Zhang Z; State Key Laboratory for Mesoscopic Physics, School of Physics, Peking University, 100871, Beijing, China.
  • Mao J; State Key Laboratory for Mesoscopic Physics, School of Physics, Peking University, 100871, Beijing, China.
  • Zhou Z; State Key Laboratory for Mesoscopic Physics, School of Physics, Peking University, 100871, Beijing, China.
  • Chen X; State Key Laboratory for Mesoscopic Physics, School of Physics, Peking University, 100871, Beijing, China.
  • Zhai C; State Key Laboratory for Mesoscopic Physics, School of Physics, Peking University, 100871, Beijing, China.
  • Bao J; State Key Laboratory for Mesoscopic Physics, School of Physics, Peking University, 100871, Beijing, China.
  • Dai T; State Key Laboratory for Mesoscopic Physics, School of Physics, Peking University, 100871, Beijing, China.
  • Yuan H; State Key Laboratory for Mesoscopic Physics, School of Physics, Peking University, 100871, Beijing, China.
  • Zhang M; Beijing Academy of Quantum Information Sciences, 100193, Beijing, China.
  • Dai D; State Key Laboratory for Modern Optical Instrumentation, College of Optical Science and Engineering, Ningbo Research Institute, International Research Center for Advanced Photonics, Zhejiang University, 310058, Hangzhou, China.
  • Tang B; State Key Laboratory for Modern Optical Instrumentation, College of Optical Science and Engineering, Ningbo Research Institute, International Research Center for Advanced Photonics, Zhejiang University, 310058, Hangzhou, China.
  • Yang Y; Institute of Microelectronics, Chinese Academy of Sciences, 100029, Beijing, China.
  • Li Z; Institute of Microelectronics, Chinese Academy of Sciences, 100029, Beijing, China.
  • Ding Y; Institute of Microelectronics, Chinese Academy of Sciences, 100029, Beijing, China.
  • Oxenløwe LK; Department of Photonics Engineering, Technical University of Denmark, 2800, Kgs. Lyngby, Denmark.
  • Thompson MG; Center for Silicon Photonics for Optical Communication (SPOC), Technical University of Denmark, 2800, Kgs. Lyngby, Denmark.
  • O'Brien JL; Department of Photonics Engineering, Technical University of Denmark, 2800, Kgs. Lyngby, Denmark.
  • Li Y; Center for Silicon Photonics for Optical Communication (SPOC), Technical University of Denmark, 2800, Kgs. Lyngby, Denmark.
  • Gong Q; Quantum Engineering Technology Labs, H. H. Wills Physics Laboratory and Department of Electrical and Electronic Engineering, University of Bristol, BS8 1FD, Bristol, United Kingdom.
  • Wang J; Department of Physics, The University of Western Australia, Perth, 6009, Australia.
Nat Commun ; 13(1): 1166, 2022 Mar 04.
Article em En | MEDLINE | ID: mdl-35246519
Controlling and programming quantum devices to process quantum information by the unit of quantum dit, i.e., qudit, provides the possibilities for noise-resilient quantum communications, delicate quantum molecular simulations, and efficient quantum computations, showing great potential to enhance the capabilities of qubit-based quantum technologies. Here, we report a programmable qudit-based quantum processor in silicon-photonic integrated circuits and demonstrate its enhancement of quantum computational parallelism. The processor monolithically integrates all the key functionalities and capabilities of initialisation, manipulation, and measurement of the two quantum quart (ququart) states and multi-value quantum-controlled logic gates with high-level fidelities. By reprogramming the configuration of the processor, we implemented the most basic quantum Fourier transform algorithms, all in quaternary, to benchmark the enhancement of quantum parallelism using qudits, which include generalised Deutsch-Jozsa and Bernstein-Vazirani algorithms, quaternary phase estimation and fast factorization algorithms. The monolithic integration and high programmability have allowed the implementations of more than one million high-fidelity preparations, operations and projections of qudit states in the processor. Our work shows an integrated photonic quantum technology for qudit-based quantum computing with enhanced capacity, accuracy, and efficiency, which could lead to the acceleration of building a large-scale quantum computer.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2022 Tipo de documento: Article