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cc-by (c) Stoop, Ralph Lukas et al., 2020
Please use this identifier to cite or link to this item: https://hdl.handle.net/2445/184861

Enhanced diffusion and non-Gaussian dynamics in driven magnetic nanoparticles

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We investigate the out-of-equilibrium dynamics of paramagnetic colloidal nanoparticles driven above a triangular lattice of cylindrical ferromagnetic domains. We use an external precessing magnetic field to create a dynamic energy landscape which propels the particles along complex trajectories, characterized by an alternation of periodic orbital motion (localization) and stochastic particle jumping between nearest domains. We show that this system is populated by localized particles as well as delocalized (transported) ones, and tune their relative fraction via the field cone angle. Our driven system presents enhanced diffusive dynamics and an emergent non-Gaussian behavior which can be explained by considering two coexisting dynamic transport modes.

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STOOP, Ralph Lukas and TIERNO, Pietro. Enhanced diffusion and non-Gaussian dynamics in driven magnetic nanoparticles. Physical Review Research. 2020. Vol. 2, num. 032031. ISSN 2643-1564. [consulted: 12 of August of 2026]. Available at: https://hdl.handle.net/2445/184861

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