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Published March 28, 2015 | Published
Journal Article Open

A comparison of numerical simulations and analytical theory of the dynamics of interacting magnetic vortices

Abstract

Magnetostatic interactions between vortices in closely spaced planar structures are important for applications including vortex-based magnonic crystals and spin torque oscillator networks. Analytical theories that include magnetostatic interaction effects have been proposed but have not yet been rigorously tested. Here, we compare micromagnetic simulations of the dynamics of magnetic vortices confined in three disks in an equilateral triangle configuration to analytical theories that include coupling. Micromagnetic simulations show that the magnetostatic coupling between the disks leads to splitting of the gyrotropic resonance into three modes and that the frequency splitting increases with decreasing separation. The temporal profiles of the magnetization depend on the vortex polarities and chiralities; however, the frequencies depend only on the polarity combinations and will fall into one of two categories: all polarities equal or one polarity opposite to the others, where the latter leads to a larger frequency splitting. Although the magnitude of the splitting observed in the simulations is larger than what is expected based on purely dipolar interactions, a simple analytical model that assumes dipole-dipole coupling captures the functional form of the frequency splitting and the motion patterns just as well as more complex models.

Additional Information

© 2015 AIP Publishing LLC. Received 12 October 2014 Accepted 20 March 2015 Published online 31 March 2015. This work was supported by the NSF under Grant Nos. NSF DMR-0907706 (CSU), NSF DMR-1053854 (Bryn Mawr), and NSF DMR-1104753 (Johns Hopkins); work at the Advanced Photon Source was supported by the U.S. DOE-BES, Contract No. DE-AC02-06CH11357.

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August 20, 2023
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