Dynamics of skyrmionic states in confined helimagnetic nanostructures
Marijan Beg, Maximilian Albert, Marc-Antonio Bisotti, David, Cort\'es-Ortu\~no, Weiwei Wang, Rebecca Carey, Mark Vousden, Ondrej Hovorka,, Chiara Ciccarelli, Charles S. Spencer, Christopher H. Marrows, and Hans, Fangohr

TL;DR
This study investigates the dynamic resonance properties of skyrmionic states in confined helimagnetic nanostructures, using simulations to identify eigenmodes and compare them with experimental conditions, aiding in experimental identification.
Contribution
It provides a systematic analysis of skyrmionic state dynamics in nanostructures, comparing eigenmode calculations with ringdown simulations and experimental feasibility, including effects of demagnetisation energy.
Findings
Eigenmodes differ between incomplete and isolated skyrmions.
Resonance frequencies depend nonlinearly on magnetic bias and disk size.
Demagnetisation energy significantly affects resonance frequencies.
Abstract
In confined helimagnetic nanostructures, skyrmionic states in the form of incomplete and isolated skyrmion states can emerge as the ground state in absence of both external magnetic field and magnetocrystalline anisotropy. In this work, we study the dynamic properties (resonance frequencies and corresponding eigenmodes) of skyrmionic states in thin film FeGe disk samples. We employ two different methods in finite-element based micromagnetic simulation: eigenvalue and ringdown method. The eigenvalue method allows us to identify all resonance frequencies and corresponding eigenmodes that can exist in the simulated system. However, using a particular experimentally feasible excitation can excite only a limited set of eigenmodes. Because of that, we perform ringdown simulations that resemble the experimental setup using both in-plane and out-of-plane excitations. In addition, we report the…
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