FUNDAMENTAL AREAS OF PHENOMENOLOGY(INCLUDING APPLICATIONS) |
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Enhancement of Continuous Variable Entanglement in Four-Wave Mixing due to Atomic Memory Effects |
ZHU Yu-Zhu, HU Xiang-Ming, WANG Fei, LI Jing-Yan |
Department of Physics, Huazhong Normal University, Wuhan 430079 |
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Cite this article: |
ZHU Yu-Zhu, HU Xiang-Ming, WANG Fei et al 2010 Chin. Phys. Lett. 27 044210 |
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Abstract We explore the effects of atomic memory on quantum correlations of two-mode light fields from four-wave mixing. A three-level atomic system in Λ configuration is considered, in which the atomic relaxation times are comparable to or longer than the cavity relaxation times and thus there exists the atomic memory. The quantum correlation spectrum in the output is calculated without the adiabatic elimination of atomic variables. It is shown that the continuous variable entanglement is enhanced over a wide range of the normalized detuning in the intermediate and bad cavity cases compared with the good cavity case. In some situations more significant enhancement occurs at sidebands.
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Keywords:
42.50.Lc
42.50.Pq
32.80.Qk
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Received: 30 September 2009
Published: 27 March 2010
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PACS: |
42.50.Lc
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(Quantum fluctuations, quantum noise, and quantum jumps)
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42.50.Pq
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(Cavity quantum electrodynamics; micromasers)
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32.80.Qk
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(Coherent control of atomic interactions with photons)
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