论文标题

搅拌二进制玻璃纤维中的涡流产生

Vortex generation in stirred binary Bose-Einstein condensates

论文作者

da Silva, Anacé N., Kumar, R. Kishor, Bradley, Ashton S., Tomio, Lauro

论文摘要

通过使用质量损坏的冷原子耦合的玻色子凝结物(BEC),研究了具有陷阱时间依赖性搅拌电位的动态涡流产生(BEC)。考虑到两个耦合物种都被煎饼样谐波陷阱限制来探索涡流的形成,并通过时间依赖性的周期性势能稍微修饰,其特征频率足够大于横向陷阱频率。该方法适用于实验可访问的二进制混合物$^{85} $ rb-$^{133} $ cs和$^{85} $ rb-$^{87} $ rb,这使我们能够验证动力学中质量差异的效果。对于这两种物种,都研究了各自能量贡献的时间演变以及相关速度,以区分湍流和非扰动流。通过使用角动量和惯性平均值的力矩,提出了有效的经典旋转频率,这些频率在旋转框架中的模拟中进一步考虑而无需搅拌电势。还为这两个物种提供了光谱分析,主要重点是不可压缩的动能。在瞬态动荡的状态下,在产生稳定的涡流模式之前,在thomas-fermi radial radial位置上方,在中间动量的$ k $上清楚地识别了特征性的$ k^{ - 5/3} $ kolmogorov的行为,这两个物种在thomas-momenta $ k $上都得到了明确的识别,该位置由通用$ k^{-3} $进一步修改。 从质量影响比较中出现的是,相关的是,随着质量差异更大,稳定涡流的动态产生速度更快。

The dynamical vortex production, with a trap-confining time-dependent stirred potential, is studied by using mass-imbalanced cold-atom coupled Bose-Einstein condensates (BEC). The vortex formation is explored by considering that both coupled species are confined by a pancake-like harmonic trap, slightly modified elliptically by a time-dependent periodic potential, with the characteristic frequency enough larger than the transversal trap frequency. The approach is applied to the experimentally accessible binary mixtures $^{85}$Rb-$^{133}$Cs and $^{85}$Rb-$^{87}$Rb, which allow us to verify the effect of mass differences in the dynamics. For both species, the time evolutions of the respective energy contributions, together with associated velocities, are studied in order to distinguish turbulent from non-turbulent flows. By using the angular momentum and moment of inertia mean values, effective classical rotation frequencies are suggested, which are further considered within simulations in the rotating frame without the stirring potential. Spectral analysis is also provided for both species, with the main focus being the incompressible kinetic energies. In the transient turbulent regime, before stable vortex patterns are produced, the characteristic $k^{-5/3}$ Kolmogorov behavior is clearly identified for both species at intermediate momenta $k$ above the inverse Thomas-Fermi radial positions, further modified by the universal $k^{-3}$ scaling at momenta higher than the inverse of the respective healing lengths. Emerging from the mass-imbalanced comparison, relevant is to observe that, as larger is the mass difference, much faster is the dynamical production of stable vortices.

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