Robust Generation of Qutrit-Qutrit Entanglement through a Single Resonant Interaction Assisted by Moderate Driving
WU Huai-Zhi, YANG Zhen-Biao**
Lab of Quantum Optics, Department of Physics, Fuzhou University, Fuzhou 350002
Abstract :We propose to engineer qutrit-qutrit entanglement through resonant atom-cavity interaction assisted by moderate laser driving, study two parameter regimes, respectively, of asymmetric atom-laser coupling and of asymmetric atom-cavity coupling, and find that both the coupling regimes possess the advantage of short operation time, compared with the previous ones achieved by dispersive interaction, adiabatic passage, and even quantum Zeno dynamics. We check numerically the influences of the parameter fluctuations and dissipation on the scheme and show it to be robust. The scheme can also be generalized to other physical systems such as the ion trap.
收稿日期: 2013-09-12
出版日期: 2013-12-13
:
42.50.Dv
(Quantum state engineering and measurements)
42.50.Pq
(Cavity quantum electrodynamics; micromasers)
03.65.Ud
(Entanglement and quantum nonlocality)
[1] Einstein A, Podolsky B and Rosen N 1935 Phys. Rev. 47 777 [2] Bell J S 1965 Phys. (Long Island City N. Y.) 1 195 [3] Greenberger D M, Horne M A, Shimony A and Zeilinger A 1990 Am. J. Phys. 58 1131 [4] Keyl M 2002 Phys. Rep. 369 431 [5] Kaszlikowski D, Gnaciński P, ?ukowski M, Miklaszewski W and Zeilinger A 2000 Phys. Rev. Lett. 85 4418 [6] Cabello A 2002 Phys. Rev. A 65 032108 [7] Cerf N J, Massar S and Pironio S 2002 Phys. Rev. Lett. 89 080402 [8] Dada A C, Leach J, Buller G S, Padgett M J and Andersson E 2011 Nat. Phys. 7 677 [9] Haroche S 2013 Rev. Mod. Phys. 85 1083 [10] Osnaghi S, Bertet P, Auffeves A, Maioli P, Brune M, Raimond J M and Haroche S 2001 Phys. Rev. Lett. 87 037902 [11] Boozer A D, Boca A, Miller R, Northup T E and Kimble H J 2007 Phys. Rev. Lett. 98 193601 [12] Brune M, Schmidt-Kaler F, Maali A, Dreyer J, Hagley E, Raimond J M and Haroche S 1996 Phys. Rev. Lett. 76 1800 [13] Zou X, Pahlke K and Mathis W 2003 Phys. Rev. A 67 044301 [14] Lin X M, Zhou Z W, Wu Y C, Wang C Z and Guo G C 2005 Chin. Phys. Lett. 22 1318 [15] Yang Z B, Wu H Z and Zheng S B 2010 Chin. Phys. B 19 094205 [16] Chen L B, Shi P, Gu Y J, Xie L and Ma L Z 2011 Opt. Commun. 284 5020 [17] Zheng S B 2007 Phys. Lett. A 370 110 [18] Li W A and Huang G Y 2011 Phys. Rev. A 83 022322 [19] Monroe C 2002 Nature 416 238 [20] Mücke M, Bochmann J, Hahn C, Neuzner A, N?lleke C, Reiserer A, Rempe G and Ritter S 2013 Phys. Rev. A 87 063805 [21] Wu Y 1996 Phys. Rev. A 54 1586 [22] Wu Y and Yang X 2005 Phys. Rev. A 71 053806 [23] Reiserer A, N?lleke C, Ritter S and Rempe G 2013 Phys. Rev. Lett. 110 223003 [24] Miller R, Northup T E, Birnbaum K M, Boca A, Boozer A D and Kimble H J 2005 J. Phys. B 38 S551 [25] Wilk T, Webster S C, Kuhn A and Rempe G 2007 Science 317 488 [26] Spillane S M, Kippenberg T J, Vahala K J, Goh K W, Wilcut E and Kimble H J 2005 Phys. Rev. A 71 013817 [27] Chen J L and Deng D L 2009 Phys. Rev. A 79 012111 [28] Chen J L, Deng D L, Su H Y, Wu C and Oh C H 2011 Phys. Rev. A 83 022316 [29] Chen J L, Gisin N, Kaszlikowski D, Kwek L C, Oh C H and ?ukowski M 2004 Phys. Rev. Lett. 92 250404
[1]
. [J]. 中国物理快报, 2022, 39(8): 80301-.
[2]
. [J]. 中国物理快报, 2022, 39(5): 50301-.
[3]
. [J]. 中国物理快报, 2022, 39(3): 30302-030302.
[4]
. [J]. 中国物理快报, 2021, 38(9): 94203-.
[5]
. [J]. 中国物理快报, 2021, 38(8): 84201-.
[6]
. [J]. 中国物理快报, 2021, 38(4): 44201-.
[7]
. [J]. 中国物理快报, 2020, 37(7): 70301-.
[8]
. [J]. 中国物理快报, 2020, 37(5): 50303-.
[9]
. [J]. 中国物理快报, 2020, 37(4): 44209-044209.
[10]
. [J]. 中国物理快报, 2020, 37(4): 44204-.
[11]
. [J]. 中国物理快报, 2020, 37(2): 20302-.
[12]
. [J]. 中国物理快报, 2019, 36(10): 104203-.
[13]
. [J]. 中国物理快报, 2019, 36(9): 90301-.
[14]
. [J]. 中国物理快报, 2019, 36(7): 70302-.
[15]
. [J]. 中国物理快报, 2018, 35(9): 90303-.