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Stability and superfluidity of the Bose-Einstein condensate in a two-leg ladder with magnetic field.

作者信息

Jian Yue, Qiao Xin, Liang Jun-Cheng, Yu Zi-Fa, Zhang Ai-Xia, Xue Ju-Kui

机构信息

College of Physics and Electronic Engineering, Northwest Normal University, Lanzhou 730070, China.

Department of Basic Sciences, Lanzhou Institute of Technology, Lanzhou 730050, China.

出版信息

Phys Rev E. 2021 Aug;104(2-1):024212. doi: 10.1103/PhysRevE.104.024212.

DOI:10.1103/PhysRevE.104.024212
PMID:34525534
Abstract

The stability and superfluidity of the Bose-Einstein condensate in two-leg ladder with magnetic field are studied. The dispersion relation and the phase diagram of the system are obtained. Three phases are revealed: the Meissner phase, the biased ladder (BL) phase, and the vortex phase. The dispersion relation and phase transition of the system strongly depend on the magnitude of atomic interaction strength, the rung-to-leg coupling ratio and the magnetic flux. Particularly, the change of the energy band structure in the phase transition region is modified significantly by the atomic interaction strength. Furthermore, based on the Bogoliubov theory, the energetic and dynamical stability of the system are invested. The stability phase diagram in the full parameter space is presented, and the dependence of superfluidity on the dispersion relation is illustrated explicitly. The atomic interaction strength can produce dynamical instability in the energetic unstable region and can expand the superfluid region. The results show that the stability of the system can be controlled by the atomic interaction strength, the rung-to-leg coupling ratio and the magnetic flux. In addition, the excitation spectrums in the Meissner phase, BL phase and vortex phase are further studied. The modulation of the excitation spectrum and the energetic stability of the system by the atomic interaction strength, the rung-to-leg coupling ratio and magnetic flux is discussed. Finally, through the numerical simulation, the dynamical instability of the system is verified by the time evolution of the Bloch wave and rung current. This provides a theoretical basis for controlling the superfluidity of the system.

摘要

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