Fe3O4 Nanoparticles: Structures, Synthesis, Magnetic Properties, Surface Functionalization, and Emerging Applications

Наночастицы Fe3O4: структуры, синтез, магнитные свойства, функционализация поверхности и перспективные применения
Minh Dang Nguyen, Hung-Vu Tran, Shoujun Xu, T. Randall Lee
2021-11-29

Biomedical and environmental applicationsFe3O4 nanoparticlesMagnetic propertiesMagnetite nanomaterialsSurface functionalization
Magnetite (Fe3O4) nanoparticles (NPs) are attractive nanomaterials in the field of material science, chemistry, and physics because of their valuable properties, such as soft ferromagnetism, half-metallicity, and biocompatibility. Various structures of Fe3O4 NPs with different sizes, geometries, and nanoarchitectures have been synthesized, and the related properties have been studied with targets in multiple fields of applications, including biomedical devices, electronic devices, environmental solutions, and energy applications. Tailoring the sizes, geometries, magnetic properties, and functionalities is an important task that determines the performance of Fe3O4 NPs in many applications. Therefore, this review focuses on the crucial aspects of Fe3O4 NPs, including structures, synthesis, magnetic properties, and strategies for functionalization, which jointly determine the application performance of various Fe3O4 NP-based systems. We first summarize the recent advances in the synthesis of magnetite NPs with different sizes, morphologies, and magnetic properties. We also highlight the importance of synthetic factors in controlling the structures and properties of NPs, such as the uniformity of sizes, morphology, surfaces, and magnetic properties. Moreover, emerging applications using Fe3O4 NPs and their functionalized nanostructures are also highlighted with a focus on applications in biomedical technologies, biosensing, environmental remedies for water treatment, and energy storage and conversion devices.
1
Fe3O4 nanoparticles combine soft ferromagnetism, half-metallicity, and biocompatibility, enabling applications across biomedical, electronic, environmental, and energy fields.
2
Functionalized Fe3O4 nanostructures show emerging potential in biomedical technologies, biosensing, water treatment, and energy storage and conversion.
3
Nanoparticle size, geometry, nanoarchitecture, magnetic properties, and surface functionality jointly determine the performance of Fe3O4-based systems.
4
Synthesis conditions critically control Fe3O4 nanoparticle size uniformity, morphology, surface characteristics, and magnetic properties.
5
The review summarizes advances in synthesizing magnetite nanoparticles with tunable sizes, morphologies, and magnetic behaviors.

Fe3O4 nanoparticles and their functionalized nanostructures

Structures, synthesis, size and morphology control, magnetic properties, surface functionalization, and application performance of Fe3O4 nanoparticle-based systems

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2021-11-29
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Minh Dang Nguyen
Hung-Vu Tran
Shoujun Xu
T. Randall Lee
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