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      Heterogeneous single-atom catalysis

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      Nature Reviews Chemistry
      Springer Nature America, Inc

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          Identification of catalytic sites for oxygen reduction in iron- and nitrogen-doped graphene materials.

          While platinum has hitherto been the element of choice for catalysing oxygen electroreduction in acidic polymer fuel cells, tremendous progress has been reported for pyrolysed Fe-N-C materials. However, the structure of their active sites has remained elusive, delaying further advance. Here, we synthesized Fe-N-C materials quasi-free of crystallographic iron structures after argon or ammonia pyrolysis. These materials exhibit nearly identical Mössbauer spectra and identical X-ray absorption near-edge spectroscopy (XANES) spectra, revealing the same Fe-centred moieties. However, the much higher activity and basicity of NH3-pyrolysed Fe-N-C materials demonstrates that the turnover frequency of Fe-centred moieties depends on the physico-chemical properties of the support. Following a thorough XANES analysis, the detailed structures of two FeN4 porphyrinic architectures with different O2 adsorption modes were then identified. These porphyrinic moieties are not easily integrated in graphene sheets, in contrast with Fe-centred moieties assumed hitherto for pyrolysed Fe-N-C materials. These new insights open the path to bottom-up synthesis approaches and studies on site-support interactions.
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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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              Single-Atom Pt as Co-Catalyst for Enhanced Photocatalytic H2 Evolution

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                Author and article information

                Journal
                Nature Reviews Chemistry
                Nat Rev Chem
                Springer Nature America, Inc
                2397-3358
                June 2018
                May 24 2018
                June 2018
                : 2
                : 6
                : 65-81
                Article
                10.1038/s41570-018-0010-1
                9d0bb4cb-642b-4b23-986c-771433532017
                © 2018

                http://www.springer.com/tdm

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