IFLP   13074
INSTITUTO DE FISICA LA PLATA
Unidad Ejecutora - UE
artículos
Título:
Effects of Nanostructure and Dipolar Interactions on Magnetohyperthermia in Iron Oxide Nanoparticles
Autor/es:
JUAN MANUEL OROZCO-HENAO; OSCAR MOSCOSO-LONDOÑO; SURENDER K. SHARMA; DIEGO MURACA; MARCELA B. FERNÁNDEZ VAN RAAP; MARCELO KNOBEL; DIEGO FERNANDO CORAL; PEDRO MENDOZA ZÉLIS; KLEBER R. PIROTA
Revista:
JOURNAL OF PHYSICAL CHEMISTRY C
Editorial:
AMER CHEMICAL SOC
Referencias:
Lugar: Washington; Año: 2016 vol. 120 p. 12796 - 12809
ISSN:
1932-7447
Resumen:
Magnetohyperthermia properties of magnetic nanoparticle colloids are strongly affected by their intrinsic magnetic properties and dipolar interaction among them. The intrinsic magnetic properties are related to nanoparticles (NPs) size, geometry, phasecomposition, magnetic anisotropy as well as saturation magnetization. The dipole dipole interactions are determined by colloid nanoparticle concentrations and the possible existence of clustering on the colloidal suspension.Here we have observed that oxygen atmosphere and pressure changes during the final stage of thermal decomposition are critical to modify the size of the iron oxide NPs from 8 nm to near 20 nm, and consequently their overall magnetic properties. Size dependent magnetic parameters such as anisotropy, magnetic moment per particle, blocking temperature and dipolar interaction energy were inferred using different phenomenological approaches. A detailed magnetohyperthermia analysis was performed by applying the linear response theory. A good correlation between experimental and theoretical specificabsorption rate (SAR) values were obtained for frequency of 260 kHz and applied field of 52 kA/m. These results were observed for the different sizes nanoparticles, nerveless disagreement between the experimental and the model increases at lower frequencies.