Please wait a minute...
Chin. Phys. B, 2009, Vol. 18(11): 4893-4900    DOI: 10.1088/1674-1056/18/11/046
CLASSICAL AREAS OF PHENOMENOLOGY Prev   Next  

Implementation of a many-qubit Grover search by cavity QED

Fan Hao-Quan(范浩权)a)b),Yang Wan-Li(杨万里)a)b)†, Huang Xue-Ren(黄学人)a)‡, and Feng Mang(冯芒) a)*
a State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, Wuhan Institute of Physics and Mathematics, Chinese Academy of Sciences, Wuhan 430071, China; b Graduate School of the Chinese Academy of Sciences, Beijing 100049, China
Abstract  We explore the possibility of an N-qubit (N>3) Grover search in cavity QED, based on a fast operation of an N-qubit controlled phase-flip with atoms in resonance with the cavity mode. We demonstrate both analytically and numerically that our scheme can be achieved efficiently to find a marked state with high fidelity and high success probability. As an example, a ten-qubit Grover search is simulated specifically under the discussion of experimental feasibility and challenge. We argue that our scheme is applicable to the case involving an arbitrary number of qubits. As cavity decay is involved in our quantum trajectory treatment, we can analytically understand the implementation of a Grover search subject to dissipation, which will be very helpful for relevant experiments.
Keywords:  cavity QED      Grover search      controlled phase flip gate  
Received:  01 April 2009      Revised:  06 May 2009      Accepted manuscript online: 
PACS:  42.50.Pq (Cavity quantum electrodynamics; micromasers)  
  03.67.Lx (Quantum computation architectures and implementations)  
  03.65.Ud (Entanglement and quantum nonlocality)  
  42.50.Dv (Quantum state engineering and measurements)  
Fund: Project supported by National Natural Science Foundation of China (Grant Nos 10474118, 60490280 and 10774161), and partly by the National Fundamental Research Program of China (Grants Nos 2005CB724502 and 2006CB921203).

Cite this article: 

Fan Hao-Quan(范浩权),Yang Wan-Li(杨万里), Huang Xue-Ren(黄学人), and Feng Mang(冯芒) Implementation of a many-qubit Grover search by cavity QED 2009 Chin. Phys. B 18 4893

[1] Lorentz quantum computer
Wenhao He(何文昊), Zhenduo Wang(王朕铎), and Biao Wu(吴飙). Chin. Phys. B, 2023, 32(4): 040304.
[2] Effects of initial states on the quantum correlations in the generalized Grover search algorithm
Zhen-Yu Chen(陈祯羽), Tian-Hui Qiu(邱田会), Wen-Bin Zhang(张文彬), and Hong-Yang Ma(马鸿洋). Chin. Phys. B, 2021, 30(8): 080303.
[3] Phase-modulated quadrature squeezing in two coupled cavities containing a two-level system
Hao-Zhen Li(李浩珍), Ran Zeng(曾然), Xue-Fang Zhou(周雪芳), Mei-Hua Bi(毕美华), Jing-Ping Xu(许静平), Ya-Ping Yang(羊亚平). Chin. Phys. B, 2020, 29(5): 050308.
[4] Cavity enhanced measurement of trap frequency in an optical dipole trap
Peng-Fei Yang(杨鹏飞), Hai He(贺海), Zhi-Hui Wang(王志辉), Xing Han(韩星), Gang Li(李刚), Peng-Fei Zhang(张鹏飞), Tian-Cai Zhang(张天才). Chin. Phys. B, 2019, 28(4): 043701.
[5] A novel scheme of hybrid entanglement swapping and teleportation using cavity QED in the small and large detuning regimes and quasi-Bell state measurement method
R Pakniat, M K Tavassoly, M H Zandi. Chin. Phys. B, 2016, 25(10): 100303.
[6] Photon bunching and anti-bunching with two dipole-coupled atoms in an optical cavity
Ya-Mei Zheng(郑雅梅), Chang-Sheng Hu(胡长生), Zhen-Biao Yang(杨贞标), Huai-Zhi Wu(吴怀志). Chin. Phys. B, 2016, 25(10): 104202.
[7] Quantum state transfer between atomic ensembles trapped in separate cavities via adiabatic passage
Zhang Chun-Ling (张春玲), Chen Mei-Feng (陈美锋). Chin. Phys. B, 2015, 24(7): 070310.
[8] Scheme for generating a cluster-type entangled squeezed vacuum state via cavity QED
Wen Jing-Ji (文晶姬), Yeon Kyu-Hwang, Wang Hong-Fu (王洪福), Zhang Shou (张寿). Chin. Phys. B, 2014, 23(4): 040301.
[9] Efficient generation of two-dimensional cluster states in cavity QED
Zhang Gang (张刚), Zhou Jian (周建), Xue Zheng-Yuan (薛正远). Chin. Phys. B, 2013, 22(4): 040307.
[10] Large payload quantum steganography based on cavity quantum electrodynamics
Ye Tian-Yu (叶天语), Jiang Li-Zhen (蒋丽珍). Chin. Phys. B, 2013, 22(4): 040305.
[11] Implementation of quantum partial search with superconducting quantum interference device qudits in cavity QED
Li Hong-Yi (李虹轶), Wu Chun-Wang (吴春旺), Chen Yu-Bo (陈玉波), Lin Yuan-Gen (林源根), Chen Ping-Xing (陈平形), Li Cheng-Zu (李承祖). Chin. Phys. B, 2013, 22(11): 110305.
[12] Implementation of quantum controlled phase gate and preparation of multiparticle entanglement in cavity QED
Wu Xi(吴熙), Chen Zhi-Hua(陈志华), Zhang Yong(张勇), Chen Yue-Hua(陈悦华), Ye Ming-Yong(叶明勇), and Lin Xiu-Min(林秀敏). Chin. Phys. B, 2011, 20(6): 060306.
[13] Quantum logic operations on two distant atoms trapped in two optical-fibre-connected cavities
Zhang Ying-Qiao(张英俏), Zhang Shou(张寿), Yeon Kyu-Hwang, and Yu Seong-Cho . Chin. Phys. B, 2011, 20(12): 120310.
[14] Scheme to implement optimal asymmetric economical 1→3 phase-covariant telecloning via cavity QED
Song Qing-Min(宋庆敏) and Ye Liu(叶柳). Chin. Phys. B, 2010, 19(8): 080309.
[15] Tunable thermal entanglement in an effective spin-star system using coupled microcavities
Yang Wan-Li(杨万里), Wei Hua(魏华), Feng Mang(冯芒), and An Jun-Hong(安钧鸿). Chin. Phys. B, 2009, 18(9): 3677-3686.
No Suggested Reading articles found!