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Dynamics of spinor Bose-Einstein condensate subject to dissipation |
Man-Man Pang(庞曼曼), Ya-Jiang Hao(郝亚江) |
Department of Physics, University of Science and Technology Beijing, Beijing 100083, China |
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Abstract We investigate the internal dynamics of the spinor Bose-Einstein condensates subject to dissipation by solving the Lindblad master equation. It is shown that for the condensates without dissipation its dynamics always evolve along a specific orbital in the phase space of (n0, θ) and display three kinds of dynamical properties including Josephson-like oscillation, self-trapping-like oscillation, and ‘running phase'. In contrast, the condensates subject to dissipation will not evolve along the specific dynamical orbital. If component-1 and component-(-1) dissipate at different rates, the magnetization m will not conserve and the system transits between different dynamical regions. The dynamical properties can be exhibited in the phase space of (n0, θ, m).
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Received: 19 October 2015
Revised: 02 December 2015
Accepted manuscript online:
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PACS:
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05.30.Jp
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(Boson systems)
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03.65.Yz
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(Decoherence; open systems; quantum statistical methods)
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03.75.Mn
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(Multicomponent condensates; spinor condensates)
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03.75.Kk
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(Dynamic properties of condensates; collective and hydrodynamic excitations, superfluid flow)
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Fund: Project supported by the National Natural Science Foundation of China (Grant No. 11004007) and the Fundamental Research Funds for the Central Universities of China. |
Corresponding Authors:
Ya-Jiang Hao
E-mail: haoyj@ustb.edu.cn
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Cite this article:
Man-Man Pang(庞曼曼), Ya-Jiang Hao(郝亚江) Dynamics of spinor Bose-Einstein condensate subject to dissipation 2016 Chin. Phys. B 25 040501
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