Controlled evolution of three-dimensional magnetic states in strongly coupled cylindrical nanowire pairs

Author:

Fullerton JORCID,Hierro-Rodriguez AORCID,Donnelly C,Sanz-Hernández D,Skoric L,MacLaren D A,Fernández-Pacheco A

Abstract

Abstract Cylindrical magnetic nanowires are promising systems for the development of three-dimensional spintronic devices. Here, we simulate the evolution of magnetic states during fabrication of strongly-coupled cylindrical nanowires with varying degrees of overlap. By varying the separation between wires, the relative strength of exchange and magnetostatic coupling can be tuned. Hence, we observe the formation of six fundamental states as a function of both inter-wire separation and wire height. In particular, two complex three-dimensional magnetic states, a 3D Landau Pattern and a Helical domain wall, are observed to emerge for intermediate overlap. These two emergent states show complex spin configurations, including a modulated domain wall with both Néel and Bloch character. The competition of magnetic interactions and the parallel growth scheme we follow (growing both wires at the same time) favours the formation of these anti-parallel metastable states. This works shows how the engineering of strongly coupled 3D nanostructures with competing interactions can be used to create complex spin textures.

Funder

MICIN

FICYT

Centre for Doctoral Training

RCUK

Universidad de Oviedo

University of Cambridge

Aragon Government

Marie Sklodowska-Curie

FEDER

CSIC

Max Planck Society

Unité Mixte de Physique, CNRS, Thales, Université Paris-Saclay

University of Glasgow

Lise Meitner Excellence Program

D.H.

European Community

European Union

EPSRC

CSIC in Zaragoza and

Publisher

IOP Publishing

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Mechanics of Materials,General Materials Science,General Chemistry,Bioengineering

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