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Number of results
2016 | 129 | 1 | 88-96

Article title

Studies on Approximation Methods in Calculating the Magnetic Dipolar Interaction Energy, and Its Impact on the Relaxation Time of Magnetic Nanoparticle Systems

Content

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Languages of publication

EN

Abstracts

EN
The studies on monodomain magnetic nanoparticle systems in colloidal suspensions have heightened lately due to their technological applications, in particular in medicine. Most applications depend on the behaviour of these systems in external magnetic field. In these systems, the nanoparticle dynamics are characterized by the Néel relaxation time and Brownian relaxation time. Due to the complexity of these systems, modelling and numerical simulation, requiring some methods of calculation, are used in the studies. Lately, it has been experimentally and theoretically shown that the magnetic dipolar interactions among nanoparticles influence the behaviour of the systems, even at low concentrations of nanoparticles. The complexity of the problem related to this type of interaction comes from its long-range anisotropic characteristic. This paper presents a series of studies on how the approximation methods, used for the dipolar magnetic interaction energy calculation, affect the magnetic nanoparticle relaxation time, as well as the impact of this aspect on the interpretation of results.

Keywords

EN

Year

Volume

129

Issue

1

Pages

88-96

Physical description

Dates

published
2016-01
received
2015-05-04
(unknown)
2015-11-25

Contributors

author
  • University "Mediterranea" of Reggio Calabria, DICEAM, Via Graziella Feo di Vito, I-89100 Reggio Calabria, Italy
author
  • "Politehnica" University of Timisoara, Department of Electrical Engineering and Industrial Informatics, Πata Victoriei No. 2, 300006 Timisoara, jud. Timis, Romania

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Document Type

Publication order reference

Identifiers

YADDA identifier

bwmeta1.element.bwnjournal-article-appv129n118kz
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