Damped point-vortex model for polar-core spin vortices in a ferromagnetic spin-1 Bose-Einstein condensate

L. Williamson, P. B. Blakie
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引用次数: 3

Abstract

Ferromagnetic spin-1 Bose-Einstein condensates in the broken-axisymmetric phase support polar-core spin vortices (PCVs), which are intimately linked to the nonequilibrium dynamics of the system. For a purely transversely magnetized system, the Turner point-vortex model predicts that PCVs behave like massive charged particles interacting via a two-dimensional Coulomb potential. We test the accuracy of the Turner model for two oppositely charged PCVs, via comparisons with numerical simulations. While the bare Turner model shows discrepancies with our numerical results, we find that a simple rescaling of the PCV mass gives much better agreement. This can be explained via a phenomenological damping arising from coupling to modes extrinsic to the point-vortex phase space. We also identify the excitations produced following PCV annihilation, which help elucidate recent phase ordering results. We extend the Turner model to cases where the system is magnetized both transversally and axially, identifying a crossover to scalar vortex dynamics for increasing external Zeeman field.
铁磁自旋-1玻色-爱因斯坦凝聚体中极核自旋涡的阻尼点涡模型
断裂轴对称相中的铁磁自旋-1玻色-爱因斯坦凝聚支持极核自旋涡(PCVs),这与系统的非平衡动力学密切相关。对于一个纯粹的横向磁化系统,特纳点涡模型预测pcv的行为就像通过二维库仑势相互作用的大质量带电粒子。通过与数值模拟的比较,我们测试了特纳模型对两种相反电荷的PCVs的准确性。虽然裸特纳模型显示与我们的数值结果不一致,但我们发现简单地重新缩放PCV质量可以得到更好的一致性。这可以通过点涡相空间外部模态耦合引起的现象学阻尼来解释。我们还确定了PCV湮灭后产生的激发,这有助于阐明最近的相顺序结果。我们将特纳模型扩展到系统横向和轴向磁化的情况,确定了增加外部塞曼场的标量涡旋动力学的交叉。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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