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Exotic vortex lattices in a rotating binary dipolar Bose-Einstein condensate

机译:旋转的二元双极玻色-爱因斯坦凝聚物中的奇异涡旋晶格

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摘要

In the last decade, considerable advances have been made in the investigation of dipolar quantum gases. Previous theoretical investigations of a rotating binary dipolar Bose-Einstein condensate, where only one component possesses dipole moment, were mainly focused on two special orientations of the dipoles: perpendicular or parallel to the plane of motion. Here we study the ground-state and rotational properties of such a system for an arbitrary orientation of the dipoles. We demonstrate the ground-state vortex structures depend strongly on the relative strength between dipolar and contact interactions and the rotation frequency, as well as on the orientation of the dipoles. In the absence of rotation, the tunable dipolar interaction can be used to induce the squeezing or expansion of the cloud, and to derive the phase transition between phase coexistence and separation. Under finite rotation, the system is found to exhibit exotic ground-state vortex configurations, such as kernel-shell, vortex necklace, and compensating stripe vortex structures. We also check the validity of the Feynman relation, and find no significant deviations from it. The obtained results open up alternate ways for the quantum control of dipolar quantum gases.
机译:在过去的十年中,在偶极子量子气体的研究中取得了相当大的进步。以前,旋转二元偶极玻色-爱因斯坦凝聚物的理论研究主要集中在偶极子的两个特殊方向上:与运动平面垂直或平行,偶极矩只有一个分量具有偶极矩。在这里,我们研究偶极子任意定向的这种系统的基态和旋转特性。我们证明了基态涡旋结构在很大程度上取决于偶极与接触相互作用之间的相对强度,旋转频率以及偶极子的取向。在没有旋转的情况下,可调谐的偶极相互作用可用于引起云的压缩或膨胀,并得出相共存和分离之间的相变。在有限旋转下,发现该系统表现出奇特的基态涡旋构型,例如核壳,涡旋项链和补偿条纹涡旋结构。我们还检查了费曼关系的有效性,发现与该关系没有重大偏离。获得的结果为偶极量子气体的量子控制开辟了替代方法。

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