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Fabio Dionigi

Researcher at Technical University of Berlin

Publications -  6
Citations -  531

Fabio Dionigi is an academic researcher from Technical University of Berlin. The author has contributed to research in topics: Nanomaterial-based catalyst & Oxygen evolution. The author has an hindex of 4, co-authored 6 publications receiving 215 citations.

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Alloy Nanocatalysts for the Electrochemical Oxygen Reduction (ORR) and the Direct Electrochemical Carbon Dioxide Reduction Reaction (CO2 RR).

TL;DR: This review addresses the current state of research on Pt-based and Cu-based nanoalloy electrocatalysts for ORR and CO2 RR, respectively, and critically compares and contrasts key performance parameters such as activity, selectivity, and durability.
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Intrinsic Electrocatalytic Activity for Oxygen Evolution of Crystalline 3d-Transition Metal Layered Double Hydroxides

TL;DR: In this article, a broad series of crystalline α-MA (II)MB (III) LDH and β-MA(OH)2 electrocatalysts (MA =Ni, Co, and MB =Co, Fe, Mn) were derived through electrochemical active surface area normalization.
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Current challenges related to the deployment of shape-controlled Pt alloy oxygen reduction reaction nanocatalysts into low Pt-loaded cathode layers of proton exchange membrane fuel cells

TL;DR: In this article, the authors discuss the challenges of deploying advanced Pt-based alloy nanocatalysts in actual cathode layers of proton exchange membrane fuel cells and propose possible solutions to understand the challenges.
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Evidence of Mars-Van-Krevelen Mechanism in the Electrochemical Oxygen Evolution on Ni-Based Catalysts.

TL;DR: In this paper, using a differential electrochemical mass spectrometry (DEMS) cell interface, the authors performed isotope-labelling experiments in 18 O-labeled aqueous alkaline electrolyte on Ni(OH)2 and NiFe layered double hydroxide nanocatalysts.

Seed-Mediated Synthesis and Catalytic ORR Reactivity of Facet-Stable, Monodisperse Platinum Nano-Octahedra

TL;DR: In this paper, a seed-templated approach is presented for the preparation of ultrasmall octahedral platinum nanoparticles (Pt NPs), harnessing the effect of monocrystalline anisotropic seeds and strict control of the reduction rate and other physicochemical parameters while avoiding polymers, surfactants and organic solvents.