Please use this identifier to cite or link to this item: https://hdl.handle.net/1889/3081
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dc.contributor.advisorSecchi, Andrea-
dc.contributor.advisorAlbertini, Franca-
dc.contributor.authorVita, Francesco-
dc.date.accessioned2016-07-11T10:50:03Z-
dc.date.available2016-07-11T10:50:03Z-
dc.date.issued2016-03-18-
dc.identifier.urihttp://hdl.handle.net/1889/3081-
dc.description.abstractThe main aim of this thesis is the controlled and reproducible synthesis of functional materials at the nanoscale. In the first chapter, a tuning of morphology and magnetic properties of magnetite nanoparticles is presented. It was achieved by an innovative approach, which involves the use of an organic macrocycle (calixarene) to induce the oriented aggregation of NPs during the synthesis. This method is potentially applicable to the preparation of other metal oxide NPs by thermal decomposition of the respective precursors. Products obtained, in particular the multi-core nanoparticles, show remarkable magnetic and colloidal properties, making them very interesting for biomedical applications. The synthesis and functionalisation of plasmonic Au and Ag nanoparticles is presented in the second chapter. Here, a supramolecular approach was exploited to achieve a controlled and potentially reversible aggregation between Au and Ag NPs. This aggregation phenomena was followed by UV - visible spectroscopy and dynamic light scattering. In the final chapters, the conjugation of plasmonic and magnetic functionalities was tackled through the preparation of dimeric nanostructures. Au - Fe oxide heterodimeric nanoparticles were prepared and their magnetic properties thoroughly characterised. The results demonstrate the formation of FeO (wustite), together with magnetite, during the thermal decomposition of the iron precursor. By an oxidation process that preserves Au in the dimeric structures, wustite completely disappeared, with the formation of either magnetite and / or maghemite, much better from the magnetic point of view. The plasmon resonance of Au results damped by the presence of the iron oxide, a material with high refractive index, but it is still present if the Au domain of the nanoparticles is exposed towards the bulk. Finally, remarkable hyperthermia, also in vitro, was found for these structures.it
dc.language.isoIngleseit
dc.publisherUniversità degli Studi di Parma. Dipartimento di Chimicait
dc.relation.ispartofseriesDottorato di ricerca in Scienza e Tecnologia dei Materiali Innovativiit
dc.rights© Francesco Vita, 2016it
dc.subjectMagnetic Nanoparticlesit
dc.subjectSupramolecular Chemistryit
dc.subjectPlasmonic Nanoparticlesit
dc.subjectCalixarenesit
dc.subjectSynthesisit
dc.subjectOriented Aggregationit
dc.subjectNoble Metalsit
dc.subjectMagnetic Hyperthermiait
dc.titleSynthesis and Characterisation of Functional Magnetic and Plasmonic Nanomaterialsit
dc.typeDoctoral thesisit
dc.subject.miurCHIM/06it
Appears in Collections:Scienze chimiche. Tesi di dottorato

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