Published November 19, 2010 | Version v1
Journal article

Size-dependent properties of magnetoferritin

  • 1. Instituto de Ciencia de Materiales de Aragon, CSIC-Universidad de Zaragoza, Pedro Cerbuna 12, 50009 Zaragoza (Spain)
  • 2. Instituto de Nanociencia de Aragon, Universidad de Zaragoza, Mariano Esquillor s/n, 50018 Zaragoza (Spain)
  • 3. Departamento de BioquImica, Universidad de Zaragoza, Pedro Cerbuna 12, 50009 Zaragoza (Spain)

Description

We report a detailed experimental study of maghemite nanoparticles, with sizes ranging from 1.6 to 6 nm, synthesized inside a biological mould of apoferritin. The structural characterization of the inorganic cores, using TEM and x-ray diffraction, reveals a low degree of crystalline order, possibly arising from the nucleation and growth of multiple domains inside each molecule. We have also investigated the molecular structure by means of atomic force microscopy in liquid. We find that the synthesis of nanoparticles inside apoferritin leads to a small, but measurable, decrease in the external diameter of the protein, probably associated with conformational changes. The magnetic response of the maghemite cores has been studied by a combination of techniques, including ac susceptibility, dc magnetization and Moessbauer spectroscopy. From the equilibrium magnetic response, we have determined the distribution of magnetic moments per molecule. The results show highly reduced magnetic moments. This effect cannot be ascribed solely to the canting of spins located at the particle surface but, instead, it suggests that magnetoferritin cores have a highly disordered magnetic structure in which the contributions of different domains compensate each other. Finally, we have also determined, for each sample, the distribution of the activation energies required for the magnetization reversal and, from this, the size-dependent magnetic anisotropy constant K. We find that K is enormously enhanced with respect to the maghemite bulk value and that it increases with decreasing size. The Moessbauer spectra suggest that low-symmetry atomic sites, probably located at the particle surface and at the interfaces between different crystalline domains, are the likely source of the enhanced magnetic anisotropy.

Availability note (English)

Available from http://dx.doi.org/10.1088/0957-4484/21/46/465707

Additional details

Identifiers

DOI
10.1088/0957-4484/21/46/465707;
PII
S0957-4484(10)64039-1;

Publishing Information

Journal Title
Nanotechnology (Print)
Journal Volume
21
Journal Issue
46
Journal Page Range
[14 p.]
ISSN
0957-4484