TY - JOUR
T1 - Superparamagnetic-blocked state transition under alternating magnetic fields
T2 - towards determining the magnetic anisotropy in magnetic suspensions
AU - Cabrera, David
AU - Yoshida, Takashi
AU - Rincón-Domínguez, Teresa
AU - Cuñado, J. L.F.
AU - Salas, Gorka
AU - Bollero, Alberto
AU - Morales, María del Puerto
AU - Camarero, Julio
AU - Teran, Francisco J.
N1 - Funding Information:
This work has been partially funded by Spanish Ministry of Science, Innovation and Universities (PCI2019-103600, RYC2011-09617, SEV-2016-0686, CEX2020-001039-S and PID2020-116181RB-C31) and Comunidad de Madrid (NANOMAGCOST, S2018/NMT-4321). This work has been partially supported by European Commission H2020 Programme (NoCanTher GA no. 685795). Spanish Scientific Network (Hipernano, RED2018-102626-T), European COST Actions CA17115 (MyWave), and CA17140 (Nano2Clinic) are also acknowledged. Authors thank Dr Hector Guerrero for the rigorous reading and constructive comments on this manuscript.
Publisher Copyright:
© 2022 The Royal Society of Chemistry
PY - 2022
Y1 - 2022
N2 - The potential of magnetic nanoparticles for acting as efficient catalysts, imaging tracers or heating mediators relays on their superparamagnetic behaviour under alternating magnetic fields. In spite of the relevance of this magnetic phenomenon, the identification of specific fingerprints to unequivocally assign superparamagnetic behaviour to nanomaterials is still lacking. Herein, we report on novel experimental and theoretical evidences related to the superparamagnetism observed in magnetic iron oxide nanoparticle suspensions at room temperature. AC magnetization measurements in a broad field frequency range from mHz to kHz and field intensities up to 40 kA m−1 unambiguously demonstrate the transition from superparamagnetic to blocked states at room temperature. Our experimental observations are supported by a theoretical model based on the stochastic Landau-Liftshitz-Gilbert equation. An empirical expression is proposed to determine the effective magnetic anisotropy from the field frequency value beyond which AC magnetization shows hysteretic behaviour. Our results significantly improve the understanding and description of the superparamagnetism of iron oxide nanoparticles, paving the way towards a more efficient exploitation of their unique magnetic properties.
AB - The potential of magnetic nanoparticles for acting as efficient catalysts, imaging tracers or heating mediators relays on their superparamagnetic behaviour under alternating magnetic fields. In spite of the relevance of this magnetic phenomenon, the identification of specific fingerprints to unequivocally assign superparamagnetic behaviour to nanomaterials is still lacking. Herein, we report on novel experimental and theoretical evidences related to the superparamagnetism observed in magnetic iron oxide nanoparticle suspensions at room temperature. AC magnetization measurements in a broad field frequency range from mHz to kHz and field intensities up to 40 kA m−1 unambiguously demonstrate the transition from superparamagnetic to blocked states at room temperature. Our experimental observations are supported by a theoretical model based on the stochastic Landau-Liftshitz-Gilbert equation. An empirical expression is proposed to determine the effective magnetic anisotropy from the field frequency value beyond which AC magnetization shows hysteretic behaviour. Our results significantly improve the understanding and description of the superparamagnetism of iron oxide nanoparticles, paving the way towards a more efficient exploitation of their unique magnetic properties.
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U2 - 10.1039/d2nr00808d
DO - 10.1039/d2nr00808d
M3 - Article
C2 - 35678469
AN - SCOPUS:85131831691
JO - Nanoscale
JF - Nanoscale
SN - 2040-3364
ER -