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Strong correlations in quantum vortex nucleation of ultracold atomic gases

机译:超冷原子气体的量子涡旋成核中的强相关性

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We review some recent developments in the theory of rotating atomic gases. These studies have thrown light on the process of nucleation of vortices in regimes where mean-field methods are inadequate. In our review, we shall describe and compare quantum vortex nucleation of a dilute ultracold bosonic gas trapped in three different configurations: a one-dimensional ring lattice, a one-dimensional ring superlattice and a two-dimensional asymmetric harmonic trap. In all of them, there is a critical rotation frequency, at which the particles in the ground state exhibit strong quantum correlations. However, the entanglement properties vary significantly from case to case. We explain these differences by characterizing the intermediate states that participate in the vortex nucleation process. Finally, we show that noise correlations are sensitive to these differences. These new studies have, therefore, shown how novel quantum states may be produced and probed in future experiments with rotating neutral atom systems.
机译:我们回顾了旋转原子气体理论的一些最新进展。这些研究揭示了在均场方法不充分的情况下涡旋形核的过程。在我们的综述中,我们将描述和比较以三种不同构型捕获的稀超冷硼气体的量子涡旋形核:一维环格,一维环超晶格和二维不对称谐波阱。在所有这些中,都有一个临界旋转频率,在该频率下,处于基态的粒子表现出很强的量子相关性。但是,纠缠特性因情况而异。我们通过表征参与涡流成核过程的中间状态来解释这些差异。最后,我们表明噪声相关性对这些差异很敏感。因此,这些新的研究表明,在未来的旋转中性原子系统实验中,如何产生和探测新的量子态。

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