Anisotropic nanoparticles (NPs) have garnered a great deal of attention for their applications in catalysis, magnetism and biomedicine. However, synthetic strategies to grow such NPs are still limited as their growth mechanisms are poorly understood. This work presents the synthesis of iron oxide nanoparticles (IONPs) based on the decomposition of iron(III) acetylacetonate in organic solvents to form anisotropic IONPs that are branched or multiply branched. We fully explore their growth parameters to understand the effect of varying amounts of oleylamine (OAm), as well as a nitrogen purge on particle morphology. We show here the synthetic relationship between a wide range of sizes and shapes of IONPs that are both isotropic and anisotropic....
The control of the growth of hematite nanoparticles from iron chloride solutions under hydrothermal ...
It is well known that at the nanoscale, materials exhibit fascinating optical, electronic and magnet...
The growth mechanism of α-Fe<sub>2</sub>O<sub>3</sub> nanoparticles in solution has been elucidated ...
Shape anisotropy has been shown to positively influence the performance of nanoparticles in many app...
Controlled synthesis of anisotropic iron oxide nanoparticles is a challenge in the field of nanomate...
Metal oxide nanoparticles can enable a wide variety of impactful applications due to their structure...
ABSTRACT Iron oxide nanoparticles (IONPs) have been widely studied in the theranostics applica...
International audienceIron oxide nanoparticles are widely used as a contrast agent in magnetic reson...
Iron oxide nanoparticles (NPs) are promising materials for use in many applications, including new c...
Iron nanoparticles (NPs) prepared by inert gas condensation were studied using high resolution trans...
Synthesis of size-controlled anisotropic magnetite (Fe3O4) nanoparticles allows designing next-gener...
[eng] From the fundamental point of view, NPs formed by MFe2O4 with (M= Co, Fe) are ideal system ...
A synthesis procedure for generating a uniform distribution of iron-oxide nanoparticles from an amor...
One-dimensional anisotropic nanoparticles are of great research interest across a wide range of biom...
The properties of magnetic nanoparticles vary dramatically with size, so reproducibly controlling si...
The control of the growth of hematite nanoparticles from iron chloride solutions under hydrothermal ...
It is well known that at the nanoscale, materials exhibit fascinating optical, electronic and magnet...
The growth mechanism of α-Fe<sub>2</sub>O<sub>3</sub> nanoparticles in solution has been elucidated ...
Shape anisotropy has been shown to positively influence the performance of nanoparticles in many app...
Controlled synthesis of anisotropic iron oxide nanoparticles is a challenge in the field of nanomate...
Metal oxide nanoparticles can enable a wide variety of impactful applications due to their structure...
ABSTRACT Iron oxide nanoparticles (IONPs) have been widely studied in the theranostics applica...
International audienceIron oxide nanoparticles are widely used as a contrast agent in magnetic reson...
Iron oxide nanoparticles (NPs) are promising materials for use in many applications, including new c...
Iron nanoparticles (NPs) prepared by inert gas condensation were studied using high resolution trans...
Synthesis of size-controlled anisotropic magnetite (Fe3O4) nanoparticles allows designing next-gener...
[eng] From the fundamental point of view, NPs formed by MFe2O4 with (M= Co, Fe) are ideal system ...
A synthesis procedure for generating a uniform distribution of iron-oxide nanoparticles from an amor...
One-dimensional anisotropic nanoparticles are of great research interest across a wide range of biom...
The properties of magnetic nanoparticles vary dramatically with size, so reproducibly controlling si...
The control of the growth of hematite nanoparticles from iron chloride solutions under hydrothermal ...
It is well known that at the nanoscale, materials exhibit fascinating optical, electronic and magnet...
The growth mechanism of α-Fe<sub>2</sub>O<sub>3</sub> nanoparticles in solution has been elucidated ...