Complex dynamics of nano-oscillators with dual vortex free layers mutually coupled via spin-torques

Fuente: arXiv
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Autori principali: Kokkinos, Loukas, Kim, Joo-Von
Natura: Preprint
Pubblicazione: 2025
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author Kokkinos, Loukas
Kim, Joo-Von
author_facet Kokkinos, Loukas
Kim, Joo-Von
contents Spin-torque vortex oscillators (STVOs) have been shown to exhibit rich and complex dynamical regimes, which are strongly dependent on the polarizer's configuration. Here, we give an overview of the dynamics in an STVO comprising two vortex free layers, where each layer serves as a dynamic polarizer for the other, increasing the number of degrees of freedom and therefore, the complexity of the system. The dynamics are studied through extensive micromagnetic simulations, performed using our own implementation of the coupled equations of motion, implemented in the open-source micromagnetics code Mumax3. We explore the roles of relative vortex configurations and layer asymmetry on the current-driven dynamics, and find several complex regimes, including self-modulated gyration, the emergence of C-state dynamics, as well as chaotic transitions between regular gyration and this C-state.
format Preprint
id arxiv_https___arxiv_org_abs_2511_00546
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Complex dynamics of nano-oscillators with dual vortex free layers mutually coupled via spin-torques
Kokkinos, Loukas
Kim, Joo-Von
Mesoscale and Nanoscale Physics
Spin-torque vortex oscillators (STVOs) have been shown to exhibit rich and complex dynamical regimes, which are strongly dependent on the polarizer's configuration. Here, we give an overview of the dynamics in an STVO comprising two vortex free layers, where each layer serves as a dynamic polarizer for the other, increasing the number of degrees of freedom and therefore, the complexity of the system. The dynamics are studied through extensive micromagnetic simulations, performed using our own implementation of the coupled equations of motion, implemented in the open-source micromagnetics code Mumax3. We explore the roles of relative vortex configurations and layer asymmetry on the current-driven dynamics, and find several complex regimes, including self-modulated gyration, the emergence of C-state dynamics, as well as chaotic transitions between regular gyration and this C-state.
title Complex dynamics of nano-oscillators with dual vortex free layers mutually coupled via spin-torques
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2511.00546