2006•Journal of Applied PhysicsOpen access

Enhancement of the magnetic anisotropy of Co clusters by Au capping

Fernando M. Luis, Juan Bartolomé, F. Bartolomé, M. J. Martínez, L. M. García, F. Pétroff, C. Deranlot, F. Wilhelm, Andreï Rogalev

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Abstract

We study the magnetic properties of Co nanoparticles, prepared by sputtering, with diameters ranging from 1to3.5nm. The effective anisotropy, which determines the activation energy for the magnetization reversal, increases with decreasing particle’s size, showing the dominant role played by surface atoms. We find that the superparamagnetic blocking temperature and the coercive field are significatively enhanced when the clusters are capped by a thin Au layer. This enhancement is probably caused by the bonding or hybridization of Co and Au atoms at the interface between the two metals. It provides thus a method to modify the magnetic anisotropy, which can be of interest for the applications of magnetic nanoparticles.

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What this paper is about

We study the magnetic properties of Co nanoparticles, prepared by sputtering, with diameters ranging from 1to3.5nm. The effective anisotropy, which determines the activation energy for the magnetization reversal, increases with decreasing particle’s size, showing the dominant role played by surface atoms. We find that the superparamagnetic blocking temperature and the coercive field are significatively enhanced when the clusters are capped by a thin Au layer. This enhancement is probably caused by the bonding or hybridization of Co and Au atoms at the interface between the two metals. It provides thus a method to modify the magnetic anisotropy, which can be of interest for the applications of magnetic nanoparticles.

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Available abstract

We study the magnetic properties of Co nanoparticles, prepared by sputtering, with diameters ranging from 1to3.5nm. The effective anisotropy, which determines the activation energy for the magnetization reversal, increases with decreasing particle’s size, showing the dominant role played by surface atoms. We find that the superparamagnetic blocking temperature and the coercive field are significatively enhanced when the clusters are capped by a thin Au layer. This enhancement is probably caused by the bonding or hybridization of Co and Au atoms at the interface between the two metals. It provides thus a method to modify the magnetic anisotropy, which can be of interest for the applications of magnetic nanoparticles.

Key concepts: Superparamagnetism, Magnetic anisotropy, Coercivity, Anisotropy energy, Materials science, Anisotropy, Condensed matter physics, Magnetization

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