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Exotic ground states of a spin-orbit-coupled spinor Bose-Einstein condensate trapped by a toroidal potential

机译:旋转轨道偶联旋锭的异国情调的地面态 - Einstein冷凝物被环形电位捕获

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The ground-state properties of a spin-orbit-coupled spin-1 Bose-Einstein condensate (BEC) in a toroidal trap are investigated. The exotic ground states, such as the necklace state, the persistent flow and even the vortex state, for the three components in the system are induced by adjustable external parameters. It is found that the petal number of the necklace states is increased with increasing the intensity of the spin-orbit coupling (SOC), and the anisotropy of the SOC can be used to control the structure of the ground states. The rotation of the condensate induced by the external field makes the densities of the three components asymmetric and tends to transform the necklace state to the persistent flow. The radius of the toroidal potential is another degree of freedom for manipulating the necklace state. In addition, the transition between the necklace state and the vortex, intermediated by the persistent flow, can be controlled by the ratio of the density-density and spin-exchange interactions. All of above results enrich our knowledge about the properties of the ground states of spin-1 BEC trapped in the toroidal trap.
机译:研究了旋转轨道偶联的旋转旋转旋转1bose-einstein冷凝物(BEC)的地面性质。通过可调节的外部参数诱导系统中的三个部件,如项链状态,持续流动甚至涡旋状态,如项链状态,持续流动甚至涡流状态。结果发现,随着旋转轨道耦合(SOC)的强度,增加项链的花瓣数,并且SOC的各向异性可用于控制地面态的结构。由外部场诱导的冷凝物的旋转使得三个组分的密度不对称并且倾向于将项链状态转变为持续流动。环形势的半径是操纵项链状态的另一种自由度。另外,项链状态和涡流之间的过渡可以通过密度密度和自旋交换相互作用的比率来控制。以上所有结果都丰富了我们关于捕获在环形陷阱中的旋转1 BEC的地面状态的知识。

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