Core position-dependent gyrotropic and damping contributions to the Thiele equation approach for accurate spin-torque vortex oscillator dynamics

Fuente: arXiv
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Main Authors: Ducarme, Colin, De Wergifosse, Simon, Araujo, Flavio Abreu
Format: Preprint
Published: 2025
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author Ducarme, Colin
De Wergifosse, Simon
Araujo, Flavio Abreu
author_facet Ducarme, Colin
De Wergifosse, Simon
Araujo, Flavio Abreu
contents Understanding the nonlinear dynamics of magnetic vortices in spin-torque vortex oscillators (STVOs) is essential for their application in neuromorphic computing. Conventional modeling approaches either rely on the standard Thiele equation, which provides only qualitative predictions, or on micromagnetic simulations, which are computationally expensive. In this work, we refine the Thiele approach by incorporating vortex-profile deformations into the evaluation of the gyrotropic and damping terms. By introducing a more realistic ansatz for the vortex magnetization profile, we determine these effective parameters semi-analytically, and we further develop a procedure to extract them directly from micromagnetic simulations. This numerical framework enables systematic benchmarking of existing analytical models and can be readily extended to other magnetic textures. The comparison between both approaches demonstrates that our semi-analytical model captures the essential nonlinearities of the magnetic vortex dynamics with high accuracy and at low computational cost.
format Preprint
id arxiv_https___arxiv_org_abs_2508_14829
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Core position-dependent gyrotropic and damping contributions to the Thiele equation approach for accurate spin-torque vortex oscillator dynamics
Ducarme, Colin
De Wergifosse, Simon
Araujo, Flavio Abreu
Mesoscale and Nanoscale Physics
Understanding the nonlinear dynamics of magnetic vortices in spin-torque vortex oscillators (STVOs) is essential for their application in neuromorphic computing. Conventional modeling approaches either rely on the standard Thiele equation, which provides only qualitative predictions, or on micromagnetic simulations, which are computationally expensive. In this work, we refine the Thiele approach by incorporating vortex-profile deformations into the evaluation of the gyrotropic and damping terms. By introducing a more realistic ansatz for the vortex magnetization profile, we determine these effective parameters semi-analytically, and we further develop a procedure to extract them directly from micromagnetic simulations. This numerical framework enables systematic benchmarking of existing analytical models and can be readily extended to other magnetic textures. The comparison between both approaches demonstrates that our semi-analytical model captures the essential nonlinearities of the magnetic vortex dynamics with high accuracy and at low computational cost.
title Core position-dependent gyrotropic and damping contributions to the Thiele equation approach for accurate spin-torque vortex oscillator dynamics
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2508.14829