| Literature DB >> 21711915 |
Yolanda Piñeiro-Redondo1, Manuel Bañobre-López, Iván Pardiñas-Blanco, Gerardo Goya, M Arturo López-Quintela, José Rivas.
Abstract
The suitability of magnetic nanoparticles (MNPs) to act as heat nano-sources by application of an alternating magnetic field has recently been studied due to their promising applications in biomedicine. The understanding of the magnetic relaxation mechanism in biocompatible nanoparticle systems is crucial in order to optimize the magnetic properties and maximize the specific absorption rate (SAR). With this aim, the SAR of magnetic dispersions containing superparamagnetic magnetite nanoparticles bio-coated with polyacrylic acid of an average particle size of ≈10 nm has been evaluated separately by changing colloidal parameters such as the MNP concentration and the viscosity of the solvent. A remarkable decrease of the SAR values with increasing particle concentration and solvent viscosity was found. These behaviours have been discussed on the basis of the magnetic relaxation mechanisms involved.PACS: 80; 87; 87.85jf.Entities:
Year: 2011 PMID: 21711915 PMCID: PMC3211476 DOI: 10.1186/1556-276X-6-383
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1(Left) TEM image of FeO@PAA NPs. Inset shows a brilliant field HR-STEM image of a single Fe3O4@PAA particle. (Right) Histogram corresponding to the Fe3O4@PAA NPs.
Figure 2Magnetization curves as a function of the applied magnetic field up to 2 T for FeO@PAA NPs at room temperature.
Figure 3Evolution of the specific absorption rate (SAR) of aqueous FeO@PAA NPs dispersions at several concentrations between 0.6 and 20 g Lunder an applied AC magnetic field of . Solid line is a guide for the eye.
Figure 4Evolution of the specific absorption rate (SAR) of FeO@PAA NPs dispersions with solvent viscosity, η, under an external AC magnetic field of . Solid line is a guide for the eye.