Monodisperse iron oxide nanocrystals with spherical and cubic morphologies, of comparable dimensions, have been prepared by the thermal decomposition of FeOOH. The lattice spacings of both forms agree with that of magnetite, Fe(3)O(4). The two, however, exhibit very different blocking temperatures. Nanocrystals of cubic morphology are superparamagnetic above 190 K while the spherical nanocrystals at a lower temperature, 142 K. The higher blocking temperatures in particles of cubic morphology are shown to be a consequence of exchange bias fields. We show that in the present iron oxide nanocrystals the exchange bias fields originate from the presence of trace amounts of wustite, FeO. A Reitveld refinement analysis of the X-ray diffraction pat...
Here we demonstrate that the anomalous magnetic properties of iron oxide nanoparticles are correlate...
An important reason to prepare magnetic nanoparticles of uniform size and shape is to ensure uniform...
Although single magnetic domain nanoparticles are very promising for many applications, size reducti...
Monodisperse iron oxide nanocrystals with spherical and cubic morphologies, of comparable dimensions...
Due to their biocompatibility and magnetic properties, iron oxide nanoparticles (NPs) areespecially ...
In contrast to bulk materials, nanoscale crystal growth is critically influenced by size- and shape-...
This thesis is focused on the fabrication and characterization of self-assembled arrays of magnetic ...
In contrast to bulk materials, nanoscale crystal growth is critically influenced by size- and shape2...
We have carried out extensive measurements on novel Fe3O4-gamma-Fe2O3 core-shell nanoparticles of ne...
We have carried out extensive measurements on novel Fe3O4–γ-Fe2O3 core–shell nanoparticles of nearly...
For three types of colloidal magnetic nanocrystals, we demonstrate that postsynthetic cation exchang...
The fine control of iron oxide nanocrystal sizes within the nanometre scale (diameters range from 2....
We report the physical properties of α-FeO (hematite), synthesized by dry-heating (350-1,000°C) of a...
We have carried out systematic studies on well-characterized monodisperse Fe3O4/gamma-Fe2O3 core/she...
We study the effect of nanometric size on the crystal structure, magnetic environment of iron and ma...
Here we demonstrate that the anomalous magnetic properties of iron oxide nanoparticles are correlate...
An important reason to prepare magnetic nanoparticles of uniform size and shape is to ensure uniform...
Although single magnetic domain nanoparticles are very promising for many applications, size reducti...
Monodisperse iron oxide nanocrystals with spherical and cubic morphologies, of comparable dimensions...
Due to their biocompatibility and magnetic properties, iron oxide nanoparticles (NPs) areespecially ...
In contrast to bulk materials, nanoscale crystal growth is critically influenced by size- and shape-...
This thesis is focused on the fabrication and characterization of self-assembled arrays of magnetic ...
In contrast to bulk materials, nanoscale crystal growth is critically influenced by size- and shape2...
We have carried out extensive measurements on novel Fe3O4-gamma-Fe2O3 core-shell nanoparticles of ne...
We have carried out extensive measurements on novel Fe3O4–γ-Fe2O3 core–shell nanoparticles of nearly...
For three types of colloidal magnetic nanocrystals, we demonstrate that postsynthetic cation exchang...
The fine control of iron oxide nanocrystal sizes within the nanometre scale (diameters range from 2....
We report the physical properties of α-FeO (hematite), synthesized by dry-heating (350-1,000°C) of a...
We have carried out systematic studies on well-characterized monodisperse Fe3O4/gamma-Fe2O3 core/she...
We study the effect of nanometric size on the crystal structure, magnetic environment of iron and ma...
Here we demonstrate that the anomalous magnetic properties of iron oxide nanoparticles are correlate...
An important reason to prepare magnetic nanoparticles of uniform size and shape is to ensure uniform...
Although single magnetic domain nanoparticles are very promising for many applications, size reducti...