Star-shaped Magnetic-plasmonic Au@Fe3O4 nano-heterostructures for photothermal therapy
Financiación H2020 / H2020 Funds
Resumen: Here, we synthesize a Au@Fe3O4 core@shell system with a highly uniform unprecedented star-like shell morphology with combined plasmonic and magnetic properties. An advanced electron microscopy characterization allows assessing the multifaceted nature of the Au core and its role in the growth of the peculiar epitaxial star-like shell with excellent crystallinity and homogeneity. Magnetometry and magneto-optical spectroscopy revealed a pure magnetite shell, with a superior saturation magnetization compared to similar Au@Fe3O4 heterostructures reported in the literature, which is ascribed to the star-like morphology, as well as to the large thickness of the shell. Of note, Au@Fe3O4 nanostar-loaded cancer cells displayed magneto-mechanical stress under a low frequency external alternating magnetic field (few tens of Hz). On the other hand, such a uniform, homogeneous, and thick magnetite shell enables the shift of the plasmonic resonance of the Au core to 640 nm, which is the largest red shift achievable in Au@Fe3O4 homogeneous core@shell systems, prompting application in photothermal therapy and optical imaging in the first biologically transparent window. Preliminary experiments performing irradiation of a stable water suspension of the nanostar and Au@Fe3O4-loaded cancer cell culture suspension at 658 nm confirmed their optical response and their suitability for photothermal therapy. The outstanding features of the prepared system can be thus potentially exploited as a multifunctional platform for magnetic-plasmonic applications.
Idioma: Inglés
DOI: 10.1021/acsami.2c04865
Año: 2022
Publicado en: ACS applied materials & interfaces 14, 25 (2022), 29087-29098
ISSN: 1944-8244

Factor impacto JCR: 9.5 (2022)
Categ. JCR: NANOSCIENCE & NANOTECHNOLOGY rank: 27 / 107 = 0.252 (2022) - Q2 - T1
Categ. JCR: MATERIALS SCIENCE, MULTIDISCIPLINARY rank: 55 / 343 = 0.16 (2022) - Q1 - T1

Factor impacto CITESCORE: 15.7 - Materials Science (Q1)

Factor impacto SCIMAGO: 2.178 - Materials Science (miscellaneous) (Q1) - Nanoscience and Nanotechnology (Q1) - Medicine (miscellaneous) (Q1)

Financiación: info:eu-repo/grantAgreement/EC/H2020/823717/EU/Enabling Science and Technology through European Electron Microscopy/ESTEEM3
Tipo y forma: Artículo (Versión definitiva)

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