Bimodal distribution of the magnetic dipole moment in nanoparticles with a monomodal distribution of the physical size

Publication date

2015-04-15

Authors

van Rijssel, J.ISNI 0000000419566880
Kuipers, Bonny W MORCID 0000-0002-0300-7190ISNI 0000000393666452
Erne, BenISNI 0000000397074702

Editors

Advisors

Supervisors

Document Type

Article
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License

taverne

Abstract

High-frequency applications of magnetic nanoparticles, such as therapeutic hyperthermia and magnetic particle imaging, are sensitive to nanoparticle size and dipole moment. Usually, it is assumed that magnetic nanoparticles with a log-normal distribution of the physical size also have a log-normal distribution of the magnetic dipole moment. Here, we test this assumption for different types of superparamagnetic iron oxide nanoparticles in the 5-20. nm range, by multimodal fitting of magnetization curves using the MINORIM inversion method. The particles are studied while in dilute colloidal dispersion in a liquid, thereby preventing hysteresis and diminishing the effects of magnetic anisotropy on the interpretation of the magnetization curves. For two different types of well crystallized particles, the magnetic distribution is indeed log-normal, as expected from the physical size distribution. However, two other types of particles, with twinning defects or inhomogeneous oxide phases, are found to have a bimodal magnetic distribution. Our qualitative explanation is that relatively low fields are sufficient to begin aligning the particles in the liquid on the basis of their net dipole moment, whereas higher fields are required to align the smaller domains or less magnetic phases inside the particles.

Keywords

Magnetic dipole moments, Magnetic domains, Magnetic nanoparticles, Magnetic polydispersity, Magnetization curves, Multimodal distributions, Taverne, Condensed Matter Physics, Electronic, Optical and Magnetic Materials

Citation

van Rijssel, J, Kuipers, B W M & Erne, B 2015, 'Bimodal distribution of the magnetic dipole moment in nanoparticles with a monomodal distribution of the physical size', Journal of Magnetism and Magnetic Materials, vol. 380, pp. 325-329. https://doi.org/10.1016/j.jmmm.2014.09.058