Quantification of dipolar interactions in FeO nanoparticles
arXiv:1508.00337 · doi:10.1021/acs.jpcc.5b07516
Abstract
A general method for the quantification of dipolar interactions in assemblies of nanoparticles has been developed from a model sample constituted by magnetite nanoparticles of 5 nm in diameter, in powder form with oleic acid as a surfactant so that the particles were solely separated from each other through an organic layer of about 1 nm in thickness. This quantification is based on the comparison of the distribution of energy barriers for magnetization reversal obtained from time-dependent relaxation measurements starting from either (i) an almost random orientation of the particles magnetizations or (ii) a collinear arrangement of them prepared by previously field cooling the sample. Experimental results and numerical simulations show that the mean dipolar field acting on each single particle is significantly reduced when particles magnetizations are collinearly aligned. Besides, the intrinsic distribution of the energy barriers of anisotropy for the non-interacting case was evaluated from a reference sample where the same magnetic particles were individually coated with a thick silica shell in order to make dipolar interactions negligible. Interestingly, the results of the numerical simulations account for the relative energy shift of the experimental energy barrier distributions corresponding to the interacting and non-interacting cases, thus supporting the validity of the proposed method for the quantification of dipolar interactions.
7 pages, 7 figures, submitted
References in corpus (3)
- Learning from Nature to Improve the Heat Generation of Iron-Oxide Nanoparticles for Magnetic Hyperthermia Applications
- Magnetic capsules for NMR imaging: Effect of magnetic nanoparticles spatial distribution and aggregation
- Surface anisotropy broadening of the energy barrier distribution in magnetic nanoparticles
Cited by in corpus (5)
- Magnetic nanoparticles: from the nanostructure to the physical properties
- Structural and magnetic properties of core-shell Au/Fe3O4 nanoparticles
- Dependence of Exchange Bias on Interparticle Interactions in Co/CoO Core/shell Nanostructures
- Role of positional disorder in fully textured ensembles of Ising-like dipoles
- Magnetization Reversal in Two-dimensional Ensemble of Nanoparticles with Positional Defects