论文标题

实验性观察大量磁铁中的涡流环

Experimental Observation of Vortex Rings in a Bulk Magnet

论文作者

Donnelly, Claire, Metlov, Konstantin L., Scagnoli, Valerio, Guizar-Sicairos, Manuel, Holler, Mirko, Bingham, Nicholas S., Raabe, Jörg, Heyderman, Laura J., Cooper, Nigel, Gliga, Sebastian

论文摘要

涡旋环是在许多系统中出现的非常稳定的结构:例如,在湍流气体中,它们处于天气现象的起源[1];在对生物学影响的流体中[2];在电磁放电中[3];和等离子体[4]。虽然涡流环在铁磁体中也存在[5],但尚未观察到它们。使用X射线磁性纳米摄影[6],我们成像了三维结构,在散装微型网络中形成闭环,每个结构由涡旋 - 抗反式对组成。基于磁涡度,类似于流体动力涡度的数量,我们将这些构型视为磁涡流环。尽管预计此类结构是在Exchange Ferromagnets中作为瞬态状态存在的[5],但我们观察到的涡流环是稳定的静态配置存在的,我们将其稳定性归因于偶极相互作用。此外,我们观察到稳定的涡旋环与磁性奇异性相交[7],在该涡流中,涡流和抗Vortex核心内的磁化逆转。我们通过场和热平衡方案深入了解这些状态的稳定性。这些测量值铺平了观察大量磁铁中复杂的三维孤子的道路,以及基于三维磁结构的应用的开发。

Vortex rings are remarkably stable structures occurring in numerous systems: for example in turbulent gases, where they are at the origin of weather phenomena [1]; in fluids with implications for biology [2]; in electromagnetic discharges [3]; and in plasmas [4]. While vortex rings have also been predicted to exist in ferromagnets [5], they have not yet been observed. Using X-ray magnetic nanotomography [6], we imaged three-dimensional structures forming closed loops in a bulk micromagnet, each composed of a vortex-antivortex pair. Based on the magnetic vorticity, a quantity analogous to hydrodynamic vorticity, we identify these configurations as magnetic vortex rings. While such structures have been predicted to exist as transient states in exchange ferromagnets [5], the vortex rings we observe exist as stable, static configurations, whose stability we attribute to the dipolar interaction. In addition, we observe stable vortex loops intersected by magnetic singularities [7], at which the magnetisation within the vortex and antivortex cores reverses. We gain insight into the stability of these states through field and thermal equilibration protocols. These measurements pave the way for the observation of complex three-dimensional solitons in bulk magnets, as well as for the development of applications based on three-dimensional magnetic structures.

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