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Autores principales: Sánchez, Elena H., Vasilakaki, Marianna, Lee, Su Seong, Normile, Peter S., Andersson, Mikael S., Mathieu, Roland, López-Ortega, Alberto, Pichon, Benoit P., Peddis, Davide, Binns, Chris, Nordblad, Per, Trohidou, Kalliopi, Nogués, Josep, De Toro, José A.
Formato: Preprint
Publicado: 2024
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Acceso en línea:https://arxiv.org/abs/2402.06583
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author Sánchez, Elena H.
Vasilakaki, Marianna
Lee, Su Seong
Normile, Peter S.
Andersson, Mikael S.
Mathieu, Roland
López-Ortega, Alberto
Pichon, Benoit P.
Peddis, Davide
Binns, Chris
Nordblad, Per
Trohidou, Kalliopi
Nogués, Josep
De Toro, José A.
author_facet Sánchez, Elena H.
Vasilakaki, Marianna
Lee, Su Seong
Normile, Peter S.
Andersson, Mikael S.
Mathieu, Roland
López-Ortega, Alberto
Pichon, Benoit P.
Peddis, Davide
Binns, Chris
Nordblad, Per
Trohidou, Kalliopi
Nogués, Josep
De Toro, José A.
contents Dense systems of magnetic nanoparticles may exhibit dipolar collective behavior. However, two fundamental questions remain unsolved: i) whether the transition temperature may be affected by the particle anisotropy or it is essentially determined by the intensity of the interparticle dipolar interactions, and ii) what is the minimum ratio of dipole-dipole interaction ($E_\text{dd}$) to nanoparticle anisotropy ($K_{\text{ef}}V$, anisotropy $\times$ volume) energies necessary to crossover from individual to collective behavior. A series of particle assemblies with similarly intense dipolar interactions but widely varying anisotropy is studied. The $K_\text{ef}$ is tuned through different degrees of cobalt-doping in maghemite nanoparticles, resulting in a variation of nearly an order of magnitude. All the bare particle compacts display collective behavior, except the one made with the highest anisotropy particles, which presents ``marginal'' features. Thus, a threshold of $K_{\text{ef}} V/E_{\text{dd}} \approx 130$ to suppress collective behavior is derived, in good agreement with Monte Carlo simulations. This translates into a crossover value of $\approx 1.7$ for the easily accessible parameter $T_\text{MAX}$(interacting)$/T_\text{MAX}$(non-interacting) (ratio of the peak temperatures of the zero-field-cooled magnetization curves of interacting and dilute particle systems), which is successfully tested against the literature to predict the individual-like$/$collective behavior of any given interacting particle assembly comprising relatively uniform particles.
format Preprint
id arxiv_https___arxiv_org_abs_2402_06583
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Crossover From Individual to Collective Magnetism in Dense Nanoparticle Systems: Local Anisotropy Versus Dipolar Interactions
Sánchez, Elena H.
Vasilakaki, Marianna
Lee, Su Seong
Normile, Peter S.
Andersson, Mikael S.
Mathieu, Roland
López-Ortega, Alberto
Pichon, Benoit P.
Peddis, Davide
Binns, Chris
Nordblad, Per
Trohidou, Kalliopi
Nogués, Josep
De Toro, José A.
Mesoscale and Nanoscale Physics
Disordered Systems and Neural Networks
Materials Science
Dense systems of magnetic nanoparticles may exhibit dipolar collective behavior. However, two fundamental questions remain unsolved: i) whether the transition temperature may be affected by the particle anisotropy or it is essentially determined by the intensity of the interparticle dipolar interactions, and ii) what is the minimum ratio of dipole-dipole interaction ($E_\text{dd}$) to nanoparticle anisotropy ($K_{\text{ef}}V$, anisotropy $\times$ volume) energies necessary to crossover from individual to collective behavior. A series of particle assemblies with similarly intense dipolar interactions but widely varying anisotropy is studied. The $K_\text{ef}$ is tuned through different degrees of cobalt-doping in maghemite nanoparticles, resulting in a variation of nearly an order of magnitude. All the bare particle compacts display collective behavior, except the one made with the highest anisotropy particles, which presents ``marginal'' features. Thus, a threshold of $K_{\text{ef}} V/E_{\text{dd}} \approx 130$ to suppress collective behavior is derived, in good agreement with Monte Carlo simulations. This translates into a crossover value of $\approx 1.7$ for the easily accessible parameter $T_\text{MAX}$(interacting)$/T_\text{MAX}$(non-interacting) (ratio of the peak temperatures of the zero-field-cooled magnetization curves of interacting and dilute particle systems), which is successfully tested against the literature to predict the individual-like$/$collective behavior of any given interacting particle assembly comprising relatively uniform particles.
title Crossover From Individual to Collective Magnetism in Dense Nanoparticle Systems: Local Anisotropy Versus Dipolar Interactions
topic Mesoscale and Nanoscale Physics
Disordered Systems and Neural Networks
Materials Science
url https://arxiv.org/abs/2402.06583