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      Introducing Time Resolution to Detect Ce(3+) Catalytically Active Sites at the Pt/CeO2 Interface through Ambient Pressure X-ray Photoelectron Spectroscopy.

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          Abstract

          X-ray photoelectron spectroscopy has been employed for the qualitative and quantitative characterization of both model and real catalytic surfaces. Recent progress in the detection of photoelectrons has enabled the acquisition of spectra at pressures up to a few tens of millibars. Although reducing the pressure gap represents a remarkable advantage for catalysis, active sites may be short-lived or hidden in the majority of spectator species. Time-resolved experiments, conducted under transient conditions, are a suitable strategy for discriminating between active sites and spectators. In the present work, we characterized the surface of a Pt/CeO2 powder catalyst at 1.0 mbar of a reacting mixture of carbon monoxide and oxygen and, by means of time resolution, identified short-lived active species. We replaced oxygen with nitrogen in the reaction mixture while fast-detecting the core level peaks of cerium. The results indicate that active Ce(3+) sites form transiently at the surface when the oxygen is switched off. Analysis of the depth profile shows that Ce(3+) ions are located at the ceria surface. The same experiment, performed on platinum-free ceria, reveals negligible reduction, indicating that platinum boosts the formation of Ce(3+) active sites at the interface.

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          Author and article information

          Journal
          J Phys Chem Lett
          The journal of physical chemistry letters
          American Chemical Society (ACS)
          1948-7185
          1948-7185
          Jan 05 2017
          : 8
          : 1
          Affiliations
          [1 ] Paul Scherrer Institute , CH-5232 Villigen, Switzerland.
          [2 ] Institute for Chemical and Bioengineering, ETH Zurich , CH-8093 Zurich, Switzerland.
          Article
          10.1021/acs.jpclett.6b02314
          27936758
          56460ca1-9d2f-4bcd-a34e-69834517db98
          History

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