Shape Anisotropic Iron Oxide-Based Magnetic Nanoparticles: Synthesis and Biomedical Applications
Abstract
:1. Introduction
2. Synthesis of Shape Anisotropic Nanoparticles
2.1. Elongated Nanoparticles
2.2. Nano- Films, Sheets and Plates
2.3. Nanocubes and Flowers
3. Biomedical Applications of Anisotropic Iron Oxide Nanoparticles
3.1. Magnetic Drug Delivery
3.2. Magnetic Hyperthermia Therapy
3.3. Magnetic Resonance Imaging (MRI)
4. Cytotoxicity of Iron Oxide Nanoparticles
5. Conclusions and Future Perspectives
Author Contributions
Funding
Conflicts of Interest
References
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Method | Advantages | Disadvantages | Ref. | Examples |
---|---|---|---|---|
Laser Ablation Synthesis in Solution (LASiS) | Green synthesis Different structures and composition | Difficult control of particle size and clustering | [27,28] | [29,30] |
Chemical vapor deposition (laser and spray pyrolysis) | Easy to prepare Production of small particle size | Expensive equipment Gaseous interferences | [26,31,32,33] | [34,35,36,37] |
Co-precipitation | Green Low-cost Scalable Facile Efficient | Difficult to control size Polydispersity Lack of precise stoichiometric phase control | [26,28,31,32,38] | [39,40,41] |
Thermal decomposition | Small size particles Control of size and shape Monodisperse | Requires multiple steps Toxic solvents Toxic and expensive precursors Laborious purification Requires surface treatment after synthesis | [31,33] | [42,43] |
Hydrothermal (solvothermal) | Green Versatile Control of morphology | Need of autoclave Control of dispersity Slow reaction kinetics | [28,33] | [44,45] |
Sol-gel synthesis | Homogeneous Control of shape and length Low-cost High phase purity | Requires post treatment By-products Safety Low efficiency | [28,33] | [46,47] |
Sonochemical decomposition | Mild experimental conditions Good crystallinity Versatile | Mechanism not still understood | [26,32,43] | [48,49] |
Microemulsion | Monodispersity Simple equipment High control of size and shape Room conditions Small sizes | Removal of surfactants High solvent consumption Low-yield Difficult scale-up | [26,28,31,33] | [50] |
Electrochemical synthesis | Control of particle size Simple and fast | Lack of reproducibility | [32] | [51,52] |
Biosynthesis | High yield Reproducibility Scalability Low cost Room temperature | Time-consuming Laborious | [31,32] | [53,54] |
Shape | Structure | Method | Size (d × l, nm) | Ms (emu/g) | Ref. |
---|---|---|---|---|---|
Nanorods | Fe3O4 | Hydrothermal + shaping ligand (EDA) | 40–50 × 500–800 | 72.94 | [70] |
25 × 200 | 71.3 | [71] | |||
Co-precipitation + shaping ligand (PVP) | 18.2 × 310.6 | 28 | [72] | ||
Hydrothermal + sacrificial template (goethite) | ~70 × ~500 | 90 | [73] | ||
Solvothermal + template-assisted (Fe3O4 microspheres) | 7–20 × 120–400 | 92.3 | [74] | ||
MnFe2O4 | Hydrothermal + sacrificial template (MnO) | 25–40 × 300–400 | 72.45 | [75] | |
CoFe2O4 | Hydrothermal | 19 × 400 | 73.36 | [76] | |
Solvothermal (EG) | 100–200 l | 54.93 | [77] | ||
Hydrothermal + shaping ligand (CTAB) | 25 × 120 | 66 | [78] | ||
Co0.5Ni0.5Fe2O4 | Microemulsion | 30–200 l | 51.1 | [79] | |
CuFe2O4 | Co-precipitation | 120–400 l | - | [80] | |
Nanowires | Fe3O4 | Sol-gel + shaping ligand (EG and P123) | 10 d; >500 aspect ratio | 34.5 | [81] |
MnFe2O4 | Hydrothermal | 100–300 d | 45.9 | [82] | |
CoFe2O4 | Sol-gel + template-assisted | 40 d | - | [83] | |
Template-assisted | 8–10 d | 51.81 | [84] | ||
Nanotubes | Fe3O4 | Template-assisted | 30 d; 7 nm wall thickness | - | [85] |
CoFe2O4 | Co-precipitation + Template-assisted | 217 d | 65 | [86] | |
Sol-gel + template-assisted | 50 d × 1000 l; 5 nm wall thickness | - | [87] |
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Andrade, R.G.D.; Veloso, S.R.S.; Castanheira, E.M.S. Shape Anisotropic Iron Oxide-Based Magnetic Nanoparticles: Synthesis and Biomedical Applications. Int. J. Mol. Sci. 2020, 21, 2455. https://doi.org/10.3390/ijms21072455
Andrade RGD, Veloso SRS, Castanheira EMS. Shape Anisotropic Iron Oxide-Based Magnetic Nanoparticles: Synthesis and Biomedical Applications. International Journal of Molecular Sciences. 2020; 21(7):2455. https://doi.org/10.3390/ijms21072455
Chicago/Turabian StyleAndrade, Raquel G. D., Sérgio R. S. Veloso, and Elisabete M. S. Castanheira. 2020. "Shape Anisotropic Iron Oxide-Based Magnetic Nanoparticles: Synthesis and Biomedical Applications" International Journal of Molecular Sciences 21, no. 7: 2455. https://doi.org/10.3390/ijms21072455