Control of entanglement and entropy squeezing of the atom driven by a classical field interacting with field under the dressed-state representation

被引:0
|
作者
Liao, Qinghong [1 ]
Xu, Juan [1 ]
Yan, Qiurong [1 ]
Liu, Ye [1 ]
Chen, An [1 ]
机构
[1] Department of Electronic Information Engineering, Nanchang University, Nanchang, 330031, Jiangxi
来源
Zhongguo Jiguang/Chinese Journal of Lasers | 2015年 / 42卷 / 05期
关键词
Entanglement; Entropy squeezing; Fock state; Linear entropy; Quantum optics;
D O I
10.3788/CJL201542.0518001
中图分类号
学科分类号
摘要
Using the theory of linear entropy and entropy squeezing, the dynamics of the entanglement and entropy squeezing of the atom driven by classical fields interacting with field by employing the dressed-state representation is examined. The influence of the photon number of Fock state, coupling coefficient of atoms and the classical driving field, and the detuning between atomic transition frequency and classical driving field frequency on the entanglement and entropy squeezing of the atom is discussed. It is shown that the evolution of linear entropy and entropy squeezing exhibits periodic behavior. The maximum value of the linear entropy increases as the photon number of Fock state, the coupling coefficient of atom and the classical driving field and the detuning increase. The high-degree squeezed and longtime atomic squeezing state can be created by controlling the coupling coefficient of atoms and the classical driving field and the detuning. The proposal may provide a theoretical way to control and manipulate the entanglement and entropy squeezing. ©, 2015, Science Press. All right reserved.
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  • [1] Bennett C.H., Brassard G., Crepeau C., Et al., Teleporting an unknown quantum state via dual classical and Einstein-Podolsky-Rosen channels, Phys Rev Lett, 70, 13, pp. 1895-1899, (1993)
  • [2] Bennett C.H., Wiesner S.J., Communication via one-and two-particle operators on Einstein-Podolsky-Rosen states, Phys Rev Lett, 69, 20, pp. 2881-2884, (1992)
  • [3] Ekert A.K., Quantum cryptography based on Bell's theorem, Phys Rev Lett, 67, 6, pp. 661-663, (1991)
  • [4] Nielsen M.A., Chuang I.L., Quantum Computation and Quantum Information, (2000)
  • [5] Hagley E., Matre X., Nogues G., Et al., Generation of einstein-podolsky-rosen pairs of atoms, Phys Rev Lett, 79, 1, pp. 1-5, (1997)
  • [6] Steffen M., Ansmann M., Radoslaw C., Et al., Measurement of the entanglement of two superconducting qubits via state tomography, Science, 313, 5792, pp. 1423-1425, (2006)
  • [7] Lu D., Qiu C., Entanglement properties in the system of atom interacting with two-mode cavity, Acta Optica Sinica, 33, 12, (2013)
  • [8] Bose S., Fuentes-Guridi I., Knight P.L., Et al., Subsystem purity as an enforcer of entanglement, Phys Rev Lett, 87, 5, (2001)
  • [9] Raimond J.M., Brune M., Haroche S., Colloquium: manipulating quantum entanglement with atoms and photons in a cavity, Rev Mod Phys, 73, 3, pp. 565-582, (2001)
  • [10] Kim M.S., Lee J.Y., Ahn D., Et al., Entanglement induced by a single-mode heat environment, Phys Rev A, 65, 4, (2002)