Remote Implementation of a Fredkin Gate via Virtual Excitation of an Atom-Cavity-Fiber System

被引:8
作者
Sun, Guang-Qing [1 ]
Wu, Jin-Lei [2 ]
Niu, Wei [1 ]
Yu, Wan-Rang [1 ]
Ji, Xin [1 ]
机构
[1] Yanbian Univ, Coll Sci, Dept Phys, Yanji 133002, Peoples R China
[2] Harbin Inst Technol, Sch Phys, Harbin 150001, Heilongjiang, Peoples R China
基金
中国国家自然科学基金;
关键词
cavity quantum electrodynamics; Fredkin gate; virtual excitation; ONE-STEP IMPLEMENTATION; ADIABATIC PASSAGE; QUANTUM; GENERATION; STATES; QUBIT;
D O I
10.1002/andp.201900372
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Simple operations and robust results are always of interest for any quantum tasks. Herein, a novel scheme is proposed for implementing a Fredkin gate via the virtual excitation of an atom-cavity-fiber system. The scheme is to control the nonlocal state-swap of two spatially separated target atoms according to the state of the control atom at hand. In the scheme, only the control atom at hand needs the laser to drive and the virtual excitation of the atom-cavity-fiber system effectively suppresses the decoherence. By numerical simulations, appreciated parameters are chosen and it is shown that the Fredkin gate can be implemented with high fidelity. Although the operation time error has slightly stronger influence on the fidelity than atom-cavity coupling strength error, the robustness of the scheme can be effectively improved against the operation time error by adopting Gaussian pulse to replace the constant pulse. In addition, the scheme can be generalized to implement alternative Fredkin gates by controlling the non-local state-swap of two remote atoms or of two remote and spatially separated atoms, which will be undoubtedly of benefit to the distributed quantum computation and remote quantum information processing.
引用
收藏
页数:9
相关论文
共 47 条
[1]   ELEMENTARY GATES FOR QUANTUM COMPUTATION [J].
BARENCO, A ;
BENNETT, CH ;
CLEVE, R ;
DIVINCENZO, DP ;
MARGOLUS, N ;
SHOR, P ;
SLEATOR, T ;
SMOLIN, JA ;
WEINFURTER, H .
PHYSICAL REVIEW A, 1995, 52 (05) :3457-3467
[2]   Fast and noise-resistant implementation of quantum phase gates and creation of quantum entangled states [J].
Chen, Ye-Hong ;
Xia, Yan ;
Chen, Qing-Qin ;
Song, Jie .
PHYSICAL REVIEW A, 2015, 91 (01)
[3]   Implementation of universal two- and three-qubit quantum gates in a cavity QED [J].
Chouikh, A. ;
Said, T. ;
Essammouni, K. ;
Bennai, M. .
OPTICAL AND QUANTUM ELECTRONICS, 2016, 48 (10)
[4]   Efficient experimental design of high-fidelity three-qubit quantum gates via genetic programming [J].
Devra, Amit ;
Prabhu, Prithviraj ;
Singh, Harpreet ;
Arvind ;
Dorai, Kavita .
QUANTUM INFORMATION PROCESSING, 2018, 17 (03) :1-24
[5]   2-BIT GATES ARE UNIVERSAL FOR QUANTUM COMPUTATION [J].
DIVINCENZO, DP .
PHYSICAL REVIEW A, 1995, 51 (02) :1015-1022
[6]   Nearly deterministic Fredkin gate based on weak cross-Kerr nonlinearities [J].
Dong, Li ;
Lin, Yan-Fang ;
Wang, Jun-Xi ;
Li, Qing-Yang ;
Shen, Hong-Zhi ;
Dong, Hai-Kuan ;
Ren, Yuan-Peng ;
Xiu, Xiao-Ming ;
Gao, Ya-Jun ;
Oh, Choo Hiap .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 2016, 33 (02) :253-260
[7]   Quantum Zeno subspaces [J].
Facchi, P ;
Pascazio, S .
PHYSICAL REVIEW LETTERS, 2002, 89 (08)
[8]   Quantum Zeno dynamics and quantum Zeno subspaces [J].
Facchi, Paolo ;
Marmo, Giuseppe ;
Pascazio, Saverio .
SUDARSHAN: SEVEN SCIENCE QUESTS, 2009, 196
[9]   Linear-optics quantum Toffoli and Fredkin gates [J].
Fiurasek, Jaromir .
PHYSICAL REVIEW A, 2006, 73 (06)
[10]   Linear optical Fredkin gate based on partial-SWAP gate [J].
Fiurasek, Jaromir .
PHYSICAL REVIEW A, 2008, 78 (03)