Combined Effect of Classical Chaos and Quantum Resonance on Entanglement Dynamics
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Abstract
We use linear entropy of an exact quantum state to study the entanglement between internal electronic states and external motional states for a two-level atom held in an amplitude-modulated and tilted optical lattice. Starting from an unentangled initial state associated with the regular 'island' of classical phase space, it is demonstrated that the quantum resonance leads to entanglement generation, the chaotic parameter region results in the increase of the generation speed, and the symmetries of the initial probability distribution determine the final degree of entanglement. The entangled initial states are associated with the classical 'chaotic sea', which do not affect the final entanglement degree for the same initial symmetry. The results may be useful in engineering quantum dynamics for quantum information processing.
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Jin-Tao Tan, Yun-Rong Luo, Zheng Zhou, Wen-Hua Hai. Combined Effect of Classical Chaos and Quantum Resonance on Entanglement Dynamics[J]. Chin. Phys. Lett., 2016, 33(7): 070302. DOI: 10.1088/0256-307X/33/7/070302
Jin-Tao Tan, Yun-Rong Luo, Zheng Zhou, Wen-Hua Hai. Combined Effect of Classical Chaos and Quantum Resonance on Entanglement Dynamics[J]. Chin. Phys. Lett., 2016, 33(7): 070302. DOI: 10.1088/0256-307X/33/7/070302
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Jin-Tao Tan, Yun-Rong Luo, Zheng Zhou, Wen-Hua Hai. Combined Effect of Classical Chaos and Quantum Resonance on Entanglement Dynamics[J]. Chin. Phys. Lett., 2016, 33(7): 070302. DOI: 10.1088/0256-307X/33/7/070302
Jin-Tao Tan, Yun-Rong Luo, Zheng Zhou, Wen-Hua Hai. Combined Effect of Classical Chaos and Quantum Resonance on Entanglement Dynamics[J]. Chin. Phys. Lett., 2016, 33(7): 070302. DOI: 10.1088/0256-307X/33/7/070302
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