Magnetic vortices are highly tunable, nonlinear systems with ideal properties for being applied in spin wave emission, data storage, and neuromorphic computing. However, their technological application is impaired by a limited understanding of non-conservative forces, that results in the open challenge of attaining precise control over vortex dynamics in coupled vortex systems. Here, we present an analytical model for the gyrotropic dynamics of coupled magnetic vortices within nano-pillar structures, revealing how conservative and non-conservative forces dictate their complex behavior. Validated by micromagnetic simulations, our model accurately predicts dynamic states, controllable through external current and magnetic field adjustments. The experimental verification in a fabricated nano-pillar device aligns with our predictions, and it showcases the system's adaptability in dynamical coupling. The unique dynamical states, combined with the system's tunability and inherent memory, make it an exemplary foundation for reservoir computing. This positions our discovery at the forefront of utilizing magnetic vortex dynamics for innovative computing solutions, marking a leap towards efficient data processing technologies.
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http://dx.doi.org/10.1038/s42005-025-02006-3 | DOI Listing |
Commun Phys
March 2025
Fachbereich Physik and Landesforschungszentrum OPTIMAS, Rheinland-Pfälzische Technische Universität Kaiserslautern-Landau, 67663 Kaiserslautern, Germany.
Magnetic vortices are highly tunable, nonlinear systems with ideal properties for being applied in spin wave emission, data storage, and neuromorphic computing. However, their technological application is impaired by a limited understanding of non-conservative forces, that results in the open challenge of attaining precise control over vortex dynamics in coupled vortex systems. Here, we present an analytical model for the gyrotropic dynamics of coupled magnetic vortices within nano-pillar structures, revealing how conservative and non-conservative forces dictate their complex behavior.
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Service d'Infectiologie, CIC-1408 INSERM Vaccinologie, CHU St. Etienne, Saint-Etienne, France.
Introduction: Chronic hip prosthetic joint infection (PJI) treatment needs non-conservative surgery. The recommended treatment follows a two-stage protocol. Between the two surgeries, full-weight bearing is prohibited, and joint stiffness and pain are rather usual complications.
View Article and Find Full Text PDFToxins (Basel)
February 2025
Physical Medicine and Rehabilitation, Department of Medical and Surgical Sciences, University of Catanzaro "Magna Graecia", 88100 Catanzaro, Italy.
Masticatory muscle hypertrophy (MMH) is a rare clinical phenomenon of uncertain etiology, characterized by a soft swelling near the angle of the jaw. This abnormal enlargement of the masseter muscle can alter the facial profile, leading to aesthetic concerns. Moreover, MMH may also have significant functional repercussions, including pain in the masseter region, often associated with temporomandibular disorders, fatigue, and discomfort during mastication.
View Article and Find Full Text PDFISA Trans
January 2025
School of Computer and Cyber Sciences, Augusta University, Augusta GA 30912, USA. Electronic address:
This paper presents a novel data-driven controller design methodology for discrete-time switching systems, emphasizing reduced conservativeness. This approach leverages both lifting and virtual clock approaches to achieve this goal. The paper thoroughly examines different application scenarios, including noise-free state measurable, noise-free state unmeasurable, and the consideration of noise.
View Article and Find Full Text PDFJ Visc Surg
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Service de Chirurgie Digestive Hépato-bilio-pancréatique et Transplantation Hépatique, Hôpital Pitié-Salpêtrière, AP-HP, Sorbonne Université, Institut Hospitalo-Universitaire ICAN, Paris, France. Electronic address:
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