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P. Davide Cozzoli

Researcher at University of Salento

Publications -  68
Citations -  6112

P. Davide Cozzoli is an academic researcher from University of Salento. The author has contributed to research in topics: Nanorod & Wetting. The author has an hindex of 31, co-authored 67 publications receiving 5682 citations. Previous affiliations of P. Davide Cozzoli include AREA Science Park & ETH Zurich.

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Low-Temperature Synthesis of Soluble and Processable Organic-Capped Anatase TiO2 Nanorods

TL;DR: The controlled growth of high aspect ratio anatase TiO2 nanorods is demonstrated by hydrolysis of titanium tetraisopropoxide in oleic acid (OLEA) as surfactant at a temperature as low as 80 degrees C.
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Microwave-assisted synthesis of colloidal inorganic nanocrystals.

TL;DR: Microwave-assisted methods that have been developed to synthesize colloidal inorganic nanocrystals are illustrated and the specific roles that microwave irradiation may play in the formation of these nanomaterials are critically evaluated.
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Colloidal heterostructured nanocrystals: Synthesis and growth mechanisms

TL;DR: In this paper, a review of recent progress in the wet-chemical development of hybrid nanocrystals (HNCs) based on functional associations of semiconductors, metals and magnetic compounds is presented.
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Magnetically Driven Floating Foams for the Removal of Oil Contaminants from Water

TL;DR: A novel composite material based on commercially available polyurethane foams functionalized with colloidal superparamagnetic iron oxide nanoparticles and submicrometer polytetrafluoroethylene particles, which can efficiently separate oil from water.
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Metallic-like Stoichiometric Copper Sulfide Nanocrystals: Phase- and Shape-Selective Synthesis, Near-Infrared Surface Plasmon Resonance Properties, and Their Modeling

TL;DR: A surfactant-assisted nonaqueous route to anisotropic copper sulfide nanocrystals, selectively trapped in the covellite phase, which can exhibit intense, size-tunable LSPR at near-infrared wavelengths despite their stoichiometric, undoped structure is demonstrated.