Faculty of Physics, Warsaw University of Technology, Ulica Koszykowa 75, Warsaw 00-662, Poland.
Department of Physics, University of Washington, Seattle, Washington 98195-1560, USA.
Phys Rev Lett. 2018 Jun 22;120(25):253002. doi: 10.1103/PhysRevLett.120.253002.
Cold atoms experiments offer invaluable information on superfluid dynamics, including decay cascades of topological defects. While the cascade properties are well established for Bose systems, our understanding of their behavior in Fermi counterparts is very limited, in particular in spin-imbalanced systems, where superfluid (paired) and normal (unpaired) particles naturally coexist giving rise to complex spatial structure of the atomic cloud. Here we show, based on a newly developed microscopic approach, that the decay cascades of topological defects are dramatically modified by the spin polarization. We demonstrate that decay cascades end up at different stages: "dark soliton," "vortex ring," or "vortex line," depending on the polarization. We reveal that it is caused by sucking of unpaired particles into the soliton's internal structure. As a consequence vortex reconnections are hindered and we anticipate that quantum turbulence phenomenon can be significantly affected, indicating new physics induced by polarization effects.
冷原子实验为超流动力学提供了宝贵的信息,包括拓扑缺陷的级联。虽然级联特性在玻色系统中已经得到很好的确立,但我们对其在费米对应物中的行为的理解非常有限,特别是在自旋不平衡系统中,超流(配对)和正常(非配对)粒子自然共存,导致原子云的复杂空间结构。在这里,我们基于新开发的微观方法表明,拓扑缺陷的级联衰变会被自旋极化显著改变。我们证明,级联衰变会在不同的阶段结束:“暗孤子”、“涡旋环”或“涡旋线”,这取决于极化。我们揭示了这是由于非配对粒子被吸入孤子的内部结构所致。因此,涡旋的重新连接受到阻碍,我们预计量子湍流现象会受到显著影响,这表明由极化效应引起的新物理。