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浅阱中自旋轨道耦合玻色-爱因斯坦凝聚体的稳定性和量子逃逸动力学

Stability and quantum escape dynamics of spin-orbit-coupled Bose-Einstein condensates in the shallow trap.

作者信息

Zhang Yan-Chao, Jian Yue, Yu Zi-Fa, Zhang Ai-Xia, Xue Ju-Kui

机构信息

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

出版信息

Phys Rev E. 2020 Sep;102(3-1):032220. doi: 10.1103/PhysRevE.102.032220.

Abstract

The Bose-Einstein condensates in a finite depth potential well provide an ideal platform to study the quantum escape dynamics. In this paper, the ground state, tunneling, and diffusion dynamics of the spin-orbit coupling (SOC) of Bose-Einstein condensates with two pseudospin components in a shallow trap are studied analytically and numerically. The phase transition between the plane-wave phase and zero-momentum phase of the ground state is obtained. Furthermore, the stability of the ground state is discussed, and the stability diagram in the parameter space is provided. The bound state (in which condensates are stably trapped in the potential well), the quasibound state (in which condensates tunnel through the well), and the unstable state (in which diffusion occurs) are revealed. We find that the finite depth potential well has an important effect on the phase transition of the ground state, and, interestingly, SOC can stabilize the system against the diffusion and manipulate the tunneling and diffusion dynamics. In particular, spatial anisotropic tunneling and diffusion dynamics of the two pseudospin components induced by SOC in quasibound and unstable states are observed. We provide an effective model and method to study and control the quantum tunneling and diffusion dynamics.

摘要

有限深势阱中的玻色 - 爱因斯坦凝聚体为研究量子逃逸动力学提供了一个理想平台。本文对浅势阱中具有两个赝自旋分量的玻色 - 爱因斯坦凝聚体的自旋轨道耦合(SOC)的基态、隧穿和扩散动力学进行了理论和数值研究。得到了基态平面波相和零动量相之间的相变。此外,讨论了基态的稳定性,并给出了参数空间中的稳定性图。揭示了束缚态(凝聚体稳定地束缚在势阱中)、准束缚态(凝聚体隧穿势阱)和非稳定态(发生扩散)。我们发现有限深势阱对基态相变有重要影响,有趣的是,自旋轨道耦合可以使系统稳定以防止扩散,并操控隧穿和扩散动力学。特别是,在准束缚态和非稳定态中观察到了由自旋轨道耦合引起的两个赝自旋分量的空间各向异性隧穿和扩散动力学。我们提供了一个有效的模型和方法来研究和控制量子隧穿和扩散动力学。

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