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Gaetano Granozzi

Researcher at University of Padua

Publications -  408
Citations -  10311

Gaetano Granozzi is an academic researcher from University of Padua. The author has contributed to research in topics: X-ray photoelectron spectroscopy & Catalysis. The author has an hindex of 42, co-authored 399 publications receiving 8858 citations. Previous affiliations of Gaetano Granozzi include Istituto Italiano di Tecnologia & University of Düsseldorf.

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Evolution of Electrical, Chemical, and Structural Properties of Transparent and Conducting Chemically Derived Graphene Thin Films

TL;DR: A detailed description of the electronic properties, chemical state, and structure of uniform single and few-layered graphene oxide (GO) thin films at different stages of reduction is reported in this paper.
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The Nature of Defects in Fluorine-Doped TiO2

TL;DR: The presence of fluorine in the lattice induces the formation of reduced Ti3+ centers that localize the extra electron needed for charge compensation and are observed by electron paramagnetic resonance as discussed by the authors.
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Nitrogen and sulfur doped mesoporous carbon as metal-free electrocatalysts for the in situ production of hydrogen peroxide

TL;DR: In this paper, nitrogen and sulfur doped or co-doped mesoporous carbons were prepared according to a hard template approach consisting in pyrolysis of powders obtained by liquid impregnation of mesoporus silica with different heterocyclic condensed aromatic precursors.
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Establishing reactivity descriptors for platinum group metal (PGM)-free Fe–N–C catalysts for PEM fuel cells

TL;DR: In this article, the authors report a comprehensive analysis of the catalytic oxygen reduction reaction (ORR) reactivity of four of today's most active benchmark platinum group metal-free (PGM-free) iron/nitrogen doped carbon electrocatalysts (Fe-N-Cs) in PEMFC.
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Single and Multiple Doping in Graphene Quantum Dots: Unraveling the Origin of Selectivity in the Oxygen Reduction Reaction

TL;DR: In this article, the selectivity of the reaction is controlled by the oxidation states of the dopants: as-prepared graphene oxide quantum dots follow a two-electron reduction path that leads to the formation of hydrogen peroxide, whereas after the reduction with...