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      Tuning Chemical and Morphological Properties of Ceria Nanopowders by Mechanochemistry

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          Abstract

          Cerium oxide powders are widely used and are of fundamental importance in catalytic pollution control and energy production due to the unique chemical properties of CeO 2. Processing steps involved in catalyst preparation, such as high-temperature calcination or mechanical milling processes, can alter the morphological and chemical properties of ceria, heavily affecting its final properties. Here, we focus on the tuning of CeO 2 nanopowder properties by mild- and high-energy milling processes, as the mechanochemical synthesis is gaining increasing attention as a green synthesis method for catalyst production. The textural and redox properties were analyzed by an array of techniques to follow the aggregation and comminution mechanisms induced by mechanical stresses, which are more prominent under high-energy conditions but strongly depend on the starting properties of the ceria powders. Simultaneously, the evolution of surface defects and chemical properties was followed by Raman spectroscopy and H 2 reduction tests, ultimately revealing a trade-off effect between structural and redox properties induced by the mechanochemical action. The mild-energy process appears to induce the largest enhancement in surface properties while maintaining bulk properties of the starting materials, hence confirming its effectiveness for its exploitation in catalysis.

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          The Scherrer Formula for X-Ray Particle Size Determination

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            GSAS-II: the genesis of a modern open-source all purpose crystallography software package

            The newly developedGSAS-IIsoftware is a general purpose package for data reduction, structure solution and structure refinement that can be used with both single-crystal and powder diffraction data from both neutron and X-ray sources, including laboratory and synchrotron sources, collected on both two- and one-dimensional detectors. It is intended thatGSAS-IIwill eventually replace both theGSASand theEXPGUIpackages, as well as many other utilities.GSAS-IIis open source and is written largely in object-oriented Python but offers speeds comparable to compiled code because of its reliance on the Python NumPy and SciPy packages for computation. It runs on all common computer platforms and offers highly integrated graphics, both for a user interface and for interpretation of parameters. The package can be applied to all stages of crystallographic analysis for constant-wavelength X-ray and neutron data. Plans for considerable additional development are discussed.
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              Thermally stable single-atom platinum-on-ceria catalysts via atom trapping

              Catalysts based on single atoms of scarce precious metals can lead to more efficient use through enhanced reactivity and selectivity. However, single atoms on catalyst supports can be mobile and aggregate into nanoparticles when heated at elevated temperatures. High temperatures are detrimental to catalyst performance unless these mobile atoms can be trapped. We used ceria powders having similar surface areas but different exposed surface facets. When mixed with a platinum/aluminum oxide catalyst and aged in air at 800°C, the platinum transferred to the ceria and was trapped. Polyhedral ceria and nanorods were more effective than ceria cubes at anchoring the platinum. Performing synthesis at high temperatures ensures that only the most stable binding sites are occupied, yielding a sinter-resistant, atomically dispersed catalyst.
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                Author and article information

                Journal
                ACS Omega
                ACS Omega
                ao
                acsodf
                ACS Omega
                American Chemical Society
                2470-1343
                27 February 2024
                12 March 2024
                : 9
                : 10
                : 12046-12059
                Affiliations
                []Dipartimento Politecnico e INSTM, Università degli Studi di Udine , Udine 33100, Italy
                []IONTOF GmbH , Münster 48149, Germany
                Author notes
                [* ]Email: trovarelli@ 123456uniud.it . Tel: +39 0432 558855.
                Author information
                https://orcid.org/0000-0001-8469-9282
                https://orcid.org/0000-0003-2474-0305
                https://orcid.org/0000-0001-5316-1746
                https://orcid.org/0000-0002-1396-4031
                Article
                10.1021/acsomega.3c09926
                10938310
                38496971
                599a17c6-5aee-42ef-995f-b91db5f74264
                © 2024 The Authors. Published by American Chemical Society

                Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works ( https://creativecommons.org/licenses/by-nc-nd/4.0/).

                History
                : 12 December 2023
                : 06 February 2024
                : 25 January 2024
                Funding
                Funded by: Directorate-General for Communication, doi 10.13039/501100000905;
                Award ID: ECS00000043
                Funded by: Fondazione CRUI, doi NA;
                Award ID: G29C20000830001
                Funded by: Ministero dell’Istruzione, dell’Università e della Ricerca, doi 10.13039/501100003407;
                Award ID: NA
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                Custom metadata
                ao3c09926
                ao3c09926

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