题名 | Research progress of integrated optical quantum computing* |
作者 | |
通讯作者 | Weng, Wen-Kang; Jin, Xian-Min |
发表日期 | 2022-12-20
|
DOI | |
发表期刊 | |
ISSN | 1000-3290
|
卷号 | 71期号:24 |
摘要 | Quantum computing, based on the inherent superposition and entanglement properties of quantum states, can break through the limits of classical computing power. However, under the present technical conditions, the number of qubits that can be manipulated is still limited. In addition, the preparation of high-precision quantum gates and additional quantum error correction systems requires more auxiliary bits, which leads to extra cost. Therefore, it seems to be a long-term goal to realize a universal fault-tolerant quantum computer. The development of analog quantum computing is a transition path that can be used to simulate many-body physics problems. Quantum walk, as the quantum counterpart of classical random walks, is a research hotspot in analog quantum computing. Owing to the unique quantum superposition characteristics, quantum walk exhibits the ballistic transport properties of outward diffusion, so quantum walk provides acceleration in computing power for various algorithms. Based on quantum walk, different computing models are derived to deal with practical physical problems in different fields, such as biology, physics, economics, and computer science. A large number of technical routes are devoted to the experiments on realizing quantum walk, including optical fiber networks, superconducting systems, nuclear magnetic resonance systems, and trapped ion atom systems. Among these routes, photons are considered as the reliable information carriers in the experiments on quantum walking due to their controllability, long coherence time. and fast speed. Therefore, in this review, we focus on different quantum walk theories and experimental implementations in optical versions, such as traditional optical platforms, optical fiber platforms, and integrated optical quantum platform. In recent years, the rapid development of integrated optical quantum platforms has driven the experiments on quantum walk to move towards the stage of integration and miniaturization, and at the same time, the experimental scale and the number of qubits have gradually increased. To this end, we summarize the technological progress of integrated optical quantum computing, including various integrated optical quantum experimental platforms and their applications. Secondly, we specifically discuss the experiment on quantum walk and practical applications based on integrated optical quantum platforms. Finally, we briefly describe other quantum algorithms and corresponding experimental implementations. These quantum computing schemes provide computational speedups for specific physical problems. In the future, with the further development of integrated optical quantum technology, along with the increase in the number of controllable qubits and the realization of the supporting quantum error correction system, a larger-scale many-body physical system can be constructed to further expand these algorithms and move towards the field of optical quantum computing, a new stage. © 2022 Chinese Physical Society. |
关键词 | |
相关链接 | [来源记录] |
收录类别 | |
语种 | 中文
|
学校署名 | 通讯
|
资助项目 | * Project supported by the National Key R&D Program of China (Grant Nos. 2019YFA0308700, 2019YFA0706302, 2017YFA0303700), the National Natural Science Foundation of China (Grant Nos. 11904229, 61734005, 11761141014, 11690033), the Science and Technology Commission of Shanghai Municipality, China (Grant Nos. 20JC1416300, 2019SHZDZX01), and the Shanghai Municipal Education Commission, China (Grant No. 2017-01-07-00-02-E00049). # These authors contributed equally. † Corresponding author. E-mail: yung@sustech.edu.cn ‡ Corresponding author. E-mail: xianmin.jin@sjtu.edu.cn
|
WOS研究方向 | Physics
|
WOS类目 | Physics, Multidisciplinary
|
WOS记录号 | WOS:000970023300002
|
出版者 | |
EI入藏号 | 20230213364404
|
EI主题词 | Computation theory
; Computing power
; Error correction
; Optical fibers
; Quantum chemistry
; Quantum electronics
; Quantum entanglement
; Quantum optics
; Qubits
; Trapped ions
|
EI分类号 | Military Engineering:404.1
; Computer Theory, Includes Formal Logic, Automata Theory, Switching Theory, Programming Theory:721.1
; Computer Peripheral Equipment:722.2
; Digital Computers and Systems:722.4
; Computer Software, Data Handling and Applications:723
; Light, Optics and Optical Devices:741
; Light/Optics:741.1
; Fiber Optics:741.1.2
; Nanotechnology:761
; Physical Chemistry:801.4
; Mechanics:931.1
; Atomic and Molecular Physics:931.3
; Quantum Theory; Quantum Mechanics:931.4
|
ESI学科分类 | PHYSICS
|
来源库 | EV Compendex
|
引用统计 |
被引频次[WOS]:1
|
成果类型 | 期刊论文 |
条目标识符 | http://sustech.caswiz.com/handle/2SGJ60CL/519776 |
专题 | 量子科学与工程研究院 理学院_物理系 |
作者单位 | 1.School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai; 200240, China 2.Shenzhen Institute for Quantum Science and Engineering, Southern University of Science and Technology, Shenzhen; 518055, China 3.Chip Hub for Integrated Photonics Xplore (CHIPX), Shanghai Jiao Tong University, Wuxi; 214000, China |
通讯作者单位 | 量子科学与工程研究院 |
推荐引用方式 GB/T 7714 |
Zhou, Wen-Hao,Wang, Yao,Weng, Wen-Kang,et al. Research progress of integrated optical quantum computing*[J]. ACTA PHYSICA SINICA,2022,71(24).
|
APA |
Zhou, Wen-Hao,Wang, Yao,Weng, Wen-Kang,&Jin, Xian-Min.(2022).Research progress of integrated optical quantum computing*.ACTA PHYSICA SINICA,71(24).
|
MLA |
Zhou, Wen-Hao,et al."Research progress of integrated optical quantum computing*".ACTA PHYSICA SINICA 71.24(2022).
|
条目包含的文件 | 条目无相关文件。 |
|
除非特别说明,本系统中所有内容都受版权保护,并保留所有权利。
修改评论