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Dive into the research topics where Lucia Del Bianco is active.

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Featured researches published by Lucia Del Bianco.


Nanomaterials | 2017

Synthesis of Ferrofluids Made of Iron Oxide Nanoflowers: Interplay between Carrier Fluid and Magnetic Properties

F. Spizzo; Paolo Sgarbossa; Elisabetta Sieni; Alessandra Semenzato; Fabrizio Dughiero; Michele Forzan; Roberta Bertani; Lucia Del Bianco

Ferrofluids are nanomaterials consisting of magnetic nanoparticles that are dispersed in a carrier fluid. Their physical properties, and hence their field of application are determined by intertwined compositional, structural, and magnetic characteristics, including interparticle magnetic interactions. Magnetic nanoparticles were prepared by thermal decomposition of iron(III) chloride hexahydrate (FeCl3·6H2O) in 2-pyrrolidone, and were then dispersed in two different fluids, water and polyethylene glycol 400 (PEG). A number of experimental techniques (especially, transmission electron microscopy, Mössbauer spectroscopy and superconducting quantum interference device (SQUID) magnetometry) were employed to study both the as-prepared nanoparticles and the ferrofluids. We show that, with the adopted synthesis parameters of temperature and FeCl3 relative concentration, nanoparticles are obtained that mainly consist of maghemite and present a high degree of structural disorder and strong spin canting, resulting in a low saturation magnetization (~45 emu/g). A remarkable feature is that the nanoparticles, ultimately due to the presence of 2-pyrrolidone at their surface, are arranged in nanoflower-shape structures, which are substantially stable in water and tend to disaggregate in PEG. The different arrangement of the nanoparticles in the two fluids implies a different strength of dipolar magnetic interactions, as revealed by the analysis of their magnetothermal behavior. The comparison between the magnetic heating capacities of the two ferrofluids demonstrates the possibility of tailoring the performances of the produced nanoparticles by exploiting the interplay with the carrier fluid.


Materials | 2017

Magnetic hysteresis in nanocomposite films consisting of a ferromagnetic AuCo alloy and ultrafine Co particles

F. Chinni; F. Spizzo; Federico Montoncello; Valentina Mattarello; C. Maurizio; Giovanni Mattei; Lucia Del Bianco

One fundamental requirement in the search for novel magnetic materials is the possibility of predicting and controlling their magnetic anisotropy and hence the overall hysteretic behavior. We have studied the magnetism of Au:Co films (~30 nm thick) with concentration ratios of 2:1, 1:1, and 1:2, grown by magnetron sputtering co-deposition on natively oxidized Si substrates. They consist of a AuCo ferromagnetic alloy in which segregated ultrafine Co particles are dispersed (the fractions of Co in the AuCo alloy and of segregated Co increase with decreasing the Au:Co ratio). We have observed an unexpected hysteretic behavior characterized by in-plane anisotropy and crossed branches in the loops measured along the hard magnetization direction. To elucidate this phenomenon, micromagnetic calculations have been performed for a simplified system composed of two exchange-coupled phases: a AuCo matrix surrounding a Co cluster, which represents an aggregate of particles. The hysteretic features are qualitatively well reproduced provided that the two phases have almost orthogonal anisotropy axes. This requirement can be plausibly fulfilled assuming a dominant magnetoelastic character of the anisotropy in both phases. The achieved conclusions expand the fundamental knowledge on nanocomposite magnetic materials, offering general guidelines for tuning the hysteretic properties of future engineered systems.


Aaps Pharmscitech | 2018

Thermal Magnetic Field Activated Propolis Release From Liquid Crystalline System Based on Magnetic Nanoparticles

Lucas de Alcântara Sica de Toledo; Hélen Cássia Rosseto; Rafaela Said dos Santos; F. Spizzo; Lucia Del Bianco; Maiara Camotti Montanha; Elisabetta Esposito; Elza Kimura; Patrícia de Souza Bonfim-Mendonça; Terezinha Inez Estivalet Svidzinski; Rita Cortesi; Marcos Luciano Bruschi

Intra-periodontal pocket drug delivery systems, such as liquid crystalline systems, are widely utilized improving the drug release control and the therapy. Propolis is used in the treatment of periodontal diseases, reducing the inflammatory and infectious conditions. Iron oxide magnetic nanoparticles (MNPs) can improve the treatment when an alternating external magnetic field (AEMF) is applied, increasing the local temperature. The aim of this study was to develop a liquid crystalline system containing MNPs for intra-periodontal pocket propolis release. MNPs were prepared using iron salts and the morphological, size, thermal, x-ray diffraction, magnetometry, and Mössbauer spectroscopy analyses were performed. Cytotoxicity studies using Artemia salina and fibroblasts were also accomplished. The systems were prepared using polyoxyethylene (10) oleyl ether, isopropyl myristate, purified water, and characterized by polarized optical microscopy, rheometry, and in vitro drug release profile using a periodontal pocket simulator apparatus. The antifungal activity of the systems was investigated against Candida spp. using an AEMF. MNPs displayed nanometric size, were monodisperse, and they displayed very low cytotoxicity. Microscopically homogeneous formulations were obtained displaying important physicochemical and biological properties. The system displayed prolonged release of propolis and important in vitro fungicide activity, which was increased when the AEMF was applied, indicating a potentially alternative therapy for the treatment of the periodontal disease.


Technologically relevant quantum materials | 2016

Magnetism of phase-separated GayFexN:Mn in a GaN matrix

Lucia Del Bianco; F. Spizzo; G. Capuzzo; T. Li; A. Bonanni


Materials.it 2016 | 2016

Production and characterization of exchange coupled Co/Pt and Co/Pd based pseudo spin-valves

S. Laureti; M. Albrecht; Lucia Del Bianco; A. Gerardino; A. Notargiacomo; F. Spizzo; A.M. Testa; G. Varvaro


ADVANCES IN MAGNETICS (AIM 2016) Conference | 2016

Ferrofluids made of magnetic nanoflowers: effect of the carrier fluid on magnetic and heating properties

F. Spizzo; Paolo Sgarbossa; Elisabetta Sieni; Lucia Del Bianco; M. Tamisari; Fabrizio Dughiero; Michele Forzan; Roberta Bertani


ADVANCES IN MAGNETICS (AIM 2016) Conference | 2016

Tuning the magnetic exchange coupling at the IrMn/NiFe interface by Cu insertion

F. Spizzo; M. Tamisari; E. Bonfiglioli; F. Chinni; Lucia Del Bianco


8th Joint European Magnetic Symposia (JEMS 2016) | 2016

Spin waves in exchange-coupled NiFe/IrMn/NiFe trilayers

G. Gubbiotti; S. Tacchi; Lucia Del Bianco; M. Tamisari; F. Spizzo; Roberto Zivieri


International Conference on the Applications of the Mössbauer Effect | 2015

Synthesis and characterization of nanogranular Fe3O4/biomimetic hydroxyapatite

F. Spizzo; Lucia Del Bianco; Isidoro Giorgio Lesci; G. Fracasso; G. Barucca; S. Stoian; Andrew Ozarowski; Roberto Scotti; Leonardo Ciocca


4th Conference of the Italian Magnetism Association - Magnet 2015 | 2015

Synthesis and characterization of magnetic nanogranular Fe3O4/biomimetic hydroxyapatite for potential applications in nanomedicine

Lucia Del Bianco; Isidoro Giorgio Lesci; G. Fracasso; G. Barucca; F. Spizzo; M. Tamisari; Roberto Scotti; Leonardo Ciocca

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F. Spizzo

University of Ferrara

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G. Barucca

Marche Polytechnic University

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A. Notargiacomo

University of Rome Tor Vergata

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F. Chinni

University of Ferrara

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