Diagram for vortex formation in quasi-two-dimensional magnetic dots
J. C. S. Rocha, P. Z. Coura, S. A. Leonel, R. A. Dias, and B. V. Costa

TL;DR
This paper investigates vortex formation in nanodisks with different lattice geometries, identifying a size-dependent transition line and mechanisms for vortex component switching, relevant for magnetic nanodevice applications.
Contribution
It provides a detailed analysis of vortex states in various lattice geometries, revealing a universal size-dependent transition and challenging existing vortex switching mechanisms.
Findings
A finite size scaling law for the vortex transition line.
Identification of in-plane and out-of-plane vortex types.
Evidence against vortex-antivortex pair creation as switching mechanism.
Abstract
The existence of nonlinear objects of the vortex type in two-dimensional magnetic systems presents itself as one of the most promising candidates for the construction of nanodevices, useful for storing data, and for the construction of reading and writing magnetic heads. The vortex appears as the ground state of a magnetic nanodisk whose magnetic moments interact via dipole-dipole potential?. In this work it is investigated the conditions for the formation of vortices in nanodisks in triangular, square, and hexagonal lattices as a function of the size of the lattice and of the strength of the dipole interaction D. Our results show that there is a "transition" line separating the vortex state from a capacitor like state. This line has a finite size scaling form depending on the size, L, of the system as Dc=D0 +1/A(?1+B*L^2)?. This behavior is obeyed by the three types of lattices. Inside…
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