RingSim—An agent-based approach for modeling mesoscopic magnetic nanowire networks

I Ian T. Vidamour G Guru Venkat C Charles Swindells D David Griffin P Paul W. Fry (Centre for Nanoscience and Technology, University of Sheffield 4 , Sheffield,) R Richard M. Rowan-Robinson (School of Chemical, Materials, and Biological Engineering, University of Sheffield 1 , Sheffield,) A Alexander Welbourne (School of Chemical, Materials, and Biological Engineering, University of Sheffield 1 , Sheffield,) F Francesco Maccherozzi (Diamond Light Source, Magnetic Materials Group) S Sarnjeet S. Dhesi (Diamond Light Source, Magnetic Materials Group) S Susan Stepney D Dan A. Allwood (School of Chemical, Materials, and Biological Engineering, University of Sheffield 1 , Sheffield,) T Thomas J. Hayward

Abstract

We describe “RingSim,” a phenomenological agent-based model that allows numerical simulation of magnetic nanowire networks with areas of hundreds of micrometers squared for durations of hundreds of seconds, a practical impossibility for general-purpose micromagnetic simulation tools. In RingSim, domain walls (DWs) are instanced as mobile agents, which respond to external magnetic fields, and their stochastic interactions with pinning sites and other DWs are described via simple phenomenological rules. We first present a detailed description of the model and its algorithmic implementation for simulating the behaviors of arrays of interconnected ring-shaped nanowires, which have previously been proposed as hardware platforms for unconventional computing applications. The model is then validated against a series of experimental measurements of an array’s static and dynamic responses to rotating magnetic fields. The robust agreement between the modeled and experimental data demonstrates that agent-based modeling is a powerful tool for exploring mesoscale magnetic devices, enabling time scales and device sizes that are inaccessible to more conventional magnetic simulation techniques.

Article Details

Volume / Issue Vol. 137, Issue 13
Published April 07, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (12)

I

Ian T. Vidamour

G

Guru Venkat

C

Charles Swindells

D

David Griffin

P

Paul W. Fry

Centre for Nanoscience and Technology, University of Sheffield 4 , Sheffield,

R

Richard M. Rowan-Robinson

School of Chemical, Materials, and Biological Engineering, University of Sheffield 1 , Sheffield,

A

Alexander Welbourne

School of Chemical, Materials, and Biological Engineering, University of Sheffield 1 , Sheffield,

F

Francesco Maccherozzi

Diamond Light Source, Magnetic Materials Group

S

Sarnjeet S. Dhesi

Diamond Light Source, Magnetic Materials Group

S

Susan Stepney

D

Dan A. Allwood

School of Chemical, Materials, and Biological Engineering, University of Sheffield 1 , Sheffield,

T

Thomas J. Hayward