Precise Size Control of the Growth of Fe3O4 Nanocubes over a Wide Size Range Using a Rationally Designed One-Pot Synthesis

dc.contributor.author
Muro-Cruces, J.
dc.contributor.author
Roca A.G.
dc.contributor.author
López-Ortega, A.
dc.contributor.author
Fantechi E.
dc.contributor.author
Pozo Bueno, Daniel del
dc.contributor.author
Estradé Albiol, Sònia
dc.contributor.author
Peiró Martínez, Francisca
dc.contributor.author
Sepúlveda, Borja
dc.contributor.author
Pineider, F.
dc.contributor.author
Sangregorio, C.
dc.contributor.author
Nogues, J.
dc.date.issued
2025-01-29T16:24:15Z
dc.date.issued
2025-01-29T16:24:15Z
dc.date.issued
2019
dc.date.issued
2025-01-29T16:24:15Z
dc.identifier
1936-0851
dc.identifier
https://hdl.handle.net/2445/218173
dc.identifier
694895
dc.description.abstract
The physicochemical properties of spinel oxide magnetic nanoparticles depend critically on both their size and shape. In particular, spinel oxide nanocrystals with cubic morphology have shown superior properties in comparison to their spherical counterparts in a variety of fields, like, for example, biomedicine. Therefore, having an accurate control over the nanoparticle shape and size, while preserving the crystallinity, becomes crucial for many applications. However, despite the increasing interest in spinel oxide nanocubes there are relatively few studies on this morphology due to the difficulty to synthesize perfectly defined cubic nanostructures, especially below 20 nm. Here we present a rationally designed synthesis pathway based on the thermal decomposition of iron(III) acetylacetonate to obtain high quality nanocubes over a wide range of sizes. This pathway enables the synthesis of monodisperse Fe3O4 nanocubes with edge length in the 9−80 nm range, with excellent cubic morphology and high crystallinity by only minor adjustments in the synthesis parameters. The accurate size control provides evidence that even 1−2 nm size variations can be critical in determining the functional properties, for example, for improved nuclear magnetic resonance T2 contrast or enhanced magnetic hyperthermia. The rationale behind the changes introduced in the synthesis procedure (e.g., the use of three solvents or adding Na-oleate) is carefully discussed. The versatility of this synthesis route is demonstrated by expanding its capability to grow other spinel oxides such as Co-ferrites, Mn-ferrites, and Mn3O4 of different sizes. The simplicity and adaptability of this synthesis scheme may ease the development of complex oxide nanocubes for a wide variety of applications.
dc.format
13 p.
dc.format
application/pdf
dc.format
application/pdf
dc.language
eng
dc.publisher
American Chemical Society
dc.relation
Versió postprint del document publicat a: https://doi.org/10.1021/acsnano.9b01281
dc.relation
ACS Nano, 2019, vol. 13, p. 7716-7728
dc.relation
https://doi.org/10.1021/acsnano.9b01281
dc.rights
(c) American Chemical Society, 2019
dc.rights
info:eu-repo/semantics/openAccess
dc.source
Articles publicats en revistes (Enginyeria Electrònica i Biomèdica)
dc.subject
Ferro
dc.subject
Nanopartícules
dc.subject
Monòmers
dc.subject
Iron
dc.subject
Nanoparticles
dc.subject
Monomers
dc.title
Precise Size Control of the Growth of Fe3O4 Nanocubes over a Wide Size Range Using a Rationally Designed One-Pot Synthesis
dc.type
info:eu-repo/semantics/article
dc.type
info:eu-repo/semantics/acceptedVersion


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