Publications by authors named "A Di Giacinto"

Article Synopsis
  • A series of platinum catalysts were developed using carbon nanofibers doped with various elements like nitrogen, sulfur, and phosphorus to study their effects on the efficiency of converting ethylene glycol to hydrogen in an aqueous environment.
  • In situ X-ray absorption spectroscopy was utilized to analyze the platinum's changing states during this process, revealing significant differences in performance and structure among the various doped catalysts.
  • The nitrogen-doped catalyst outperformed others in hydrogen production due to better platinum dispersion, while sulfur-doped showed the least activity, and phosphorus-doped led to alcohol production, highlighting how the local environment around platinum influences catalytic outcomes.
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We present the measurement of the two-neutrino double-β decay rate of ^{76}Ge performed with the GERDA Phase II experiment. With a subset of the entire GERDA exposure, 11.8 kg yr, the half-life of the process has been determined: T_{1/2}^{2ν}=(2.

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We search for tri-nucleon decays of Ge in the dataset from the GERmanium Detector Array (GERDA) experiment. Decays that populate excited levels of the daughter nucleus above the threshold for particle emission lead to disintegration and are not considered. The ppp-, ppn-, and pnn-decays lead to Cu, Zn, and Ga nuclei, respectively.

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The ability to detect liquid argon scintillation light from within a densely packed high-purity germanium detector array allowed the Gerda experiment to reach an exceptionally low background rate in the search for neutrinoless double beta decay of Ge. Proper modeling of the light propagation throughout the experimental setup, from any origin in the liquid argon volume to its eventual detection by the novel light read-out system, provides insight into the rejection capability and is a necessary ingredient to obtain robust background predictions. In this paper, we present a model of the Gerda liquid argon veto, as obtained by Monte Carlo simulations and constrained by calibration data, and highlight its application for background decomposition.

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We present an improved measurement of the carbon-nitrogen-oxygen (CNO) solar neutrino interaction rate at Earth obtained with the complete Borexino Phase-III dataset. The measured rate, R_{CNO}=6.7_{-0.

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