Skyrmion stacking in stray field-coupled ultrathin ferromagnetic multilayers
N. J. Dubicki, V. V. Slastikov, A. Bernand-Mantel, C. B. Muratov

TL;DR
This study models and analyzes the energy landscape of stacked skyrmions in ultrathin ferromagnetic multilayers, revealing stable configurations and interactions crucial for future magnetic technologies.
Contribution
It derives a reduced energy functional for multilayer skyrmions and characterizes stable configurations, especially in bilayer systems, with a focus on stray field stabilization.
Findings
Existence of energy minimizers for skyrmion configurations.
Stable antiparallel in-plane magnetization in bilayer skyrmions.
Energy dependence on skyrmion separation distance.
Abstract
This paper explores the energy landscape of ferromagnetic multilayer heterostructures that feature magnetic skyrmions -- tiny whirls of spins with non-trivial topology -- in each magnetic layer. Such magnetic heterostructures have been recently pursued as possible hosts of room temperature stable magnetic skyrmions suitable for the next generation of low power information technologies and unconventional computing. The presence of stacked skyrmions in the adjacent layers gives rise to a strongly coupled nonlinear system, whereby the induced magnetic field plays a crucial stabilizing role. Starting with the micromagnetic modeling framework, we derive a general reduced energy functional for a fixed number of ultrathin ferromagnetic layers with perpendicular magnetocrystalline anisotropy. We next investigate this energy functional in the regime in which the energy…
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