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Quantum walks on a programmable two-dimensional 62-qubit superconducting processor

Authors :
Gong, Ming
Wang, Shiyu
Zha, Chen
Chen, Ming-Cheng
Huang, He-Liang
Wu, Yulin
Zhu, Qingling
Zhao, Youwei
Li, Shaowei
Guo, Shaojun
Qian, Haoran
Ye, Yangsen
Chen, Fusheng
Ying, Chong
Yu, Jiale
Fan, Daojin
Wu, Dachao
Su, Hong
Deng, Hui
Rong, Hao
Zhang, Kaili
Cao, Sirui
Lin, Jin
Xu, Yu
Sun, Lihua
Guo, Cheng
Li, Na
Liang, Futian
Bastidas, V. M.
Nemoto, Kae
Munro, W. J.
Huo, Yong-Heng
Lu, Chao-Yang
Peng, Cheng-Zhi
Zhu, Xiaobo
Pan, Jian-Wei
Source :
Science 372, 948-952 (2021)
Publication Year :
2021

Abstract

Quantum walks are the quantum mechanical analogue of classical random walks and an extremely powerful tool in quantum simulations, quantum search algorithms, and even for universal quantum computing. In our work, we have designed and fabricated an 8x8 two-dimensional square superconducting qubit array composed of 62 functional qubits. We used this device to demonstrate high fidelity single and two particle quantum walks. Furthermore, with the high programmability of the quantum processor, we implemented a Mach-Zehnder interferometer where the quantum walker coherently traverses in two paths before interfering and exiting. By tuning the disorders on the evolution paths, we observed interference fringes with single and double walkers. Our work is an essential milestone in the field, brings future larger scale quantum applications closer to realization on these noisy intermediate-scale quantum processors.<br />Comment: 13 pages, 4 figures, and supplementary materials with 21 pages, 13 figures and 1 table

Subjects

Subjects :
Quantum Physics

Details

Database :
arXiv
Journal :
Science 372, 948-952 (2021)
Publication Type :
Report
Accession number :
edsarx.2102.02573
Document Type :
Working Paper
Full Text :
https://doi.org/10.1126/science.abg7812