Fe3O4 nanoparticles are one of the most promising candidates for biomedical applications such as magnetic hyperthermia and theranostics due to their bio-compatibility, structural stability and good magnetic properties. However, much is unknown about the nanoscale origins of the observed magnetic properties of particles due to the dominance of surface and finite size effects. Here we have developed an atomistic spin model of elongated magnetite nanocrystals to specifically address the role of faceting and elongation on the magnetic shape anisotropy. We find that for faceted particles simple analytical formulae overestimate the magnetic shape anisotropy and that the underlying cubic anisotropy makes a significant contribution to the energy ba...
Highly crystalline single-domain magnetite Fe3O4 nanoparticles (NPs) are important, not only for fun...
In magnetic nanoparticles (NPs), the observed increase in the effective magnetic anisotropy Keff wit...
Iron oxides such as magnetite, maghemite and cobalt ferrite are of huge importance to biomedical app...
A three-step aqueous approach to obtain large (>50 nm) magnetite single-core particles has been deve...
In this work we have applied theoretical calculations to new experimental measurements of the effect...
The distribution of shape anisotropy constants in two colloids of iron oxide nanoparticles has been ...
Fe3O4 nanoparticles (NPs) with different shapes have been prepared by a \u27solventless\u27 synthesi...
Shape anisotropy is of primary importance to understand the magnetic behavior of nanoparticles, but ...
Recent advances in the field of magnetic materials emphasize that the development of new and useful ...
Research on iron oxide-based magnetic nanoparticles and their clinical use has been, so far, mainly ...
The use of microwave-assisted synthesis (in water) of α-Fe2O3 nanomaterials followed by their transf...
The use of microwave-assisted synthesis (in water) of a-Fe2O3 nanomaterials followed by their transf...
Synthesis of size-controlled anisotropic magnetite (Fe3O4) nanoparticles allows designing next-gener...
Magnetic nanoparticles can generate heat when exposed to an alternating magnetic field. Their heatin...
Shape anisotropy is of primary importance to understand the magnetic behavior of nanoparticles, but ...
Highly crystalline single-domain magnetite Fe3O4 nanoparticles (NPs) are important, not only for fun...
In magnetic nanoparticles (NPs), the observed increase in the effective magnetic anisotropy Keff wit...
Iron oxides such as magnetite, maghemite and cobalt ferrite are of huge importance to biomedical app...
A three-step aqueous approach to obtain large (>50 nm) magnetite single-core particles has been deve...
In this work we have applied theoretical calculations to new experimental measurements of the effect...
The distribution of shape anisotropy constants in two colloids of iron oxide nanoparticles has been ...
Fe3O4 nanoparticles (NPs) with different shapes have been prepared by a \u27solventless\u27 synthesi...
Shape anisotropy is of primary importance to understand the magnetic behavior of nanoparticles, but ...
Recent advances in the field of magnetic materials emphasize that the development of new and useful ...
Research on iron oxide-based magnetic nanoparticles and their clinical use has been, so far, mainly ...
The use of microwave-assisted synthesis (in water) of α-Fe2O3 nanomaterials followed by their transf...
The use of microwave-assisted synthesis (in water) of a-Fe2O3 nanomaterials followed by their transf...
Synthesis of size-controlled anisotropic magnetite (Fe3O4) nanoparticles allows designing next-gener...
Magnetic nanoparticles can generate heat when exposed to an alternating magnetic field. Their heatin...
Shape anisotropy is of primary importance to understand the magnetic behavior of nanoparticles, but ...
Highly crystalline single-domain magnetite Fe3O4 nanoparticles (NPs) are important, not only for fun...
In magnetic nanoparticles (NPs), the observed increase in the effective magnetic anisotropy Keff wit...
Iron oxides such as magnetite, maghemite and cobalt ferrite are of huge importance to biomedical app...