Literature DB >> 29899477

Velocity-resolved kinetics of site-specific carbon monoxide oxidation on platinum surfaces.

Jannis Neugebohren1, Dmitriy Borodin1, Hinrich W Hahn1, Jan Altschäffel1,2, Alexander Kandratsenka2, Daniel J Auerbach2, Charles T Campbell3, Dirk Schwarzer2, Dan J Harding1,2,4, Alec M Wodtke1,2,5, Theofanis N Kitsopoulos6,7,8.   

Abstract

Catalysts are widely used to increase reaction rates. They function by stabilizing the transition state of the reaction at their active site, where the atomic arrangement ensures favourable interactions 1 . However, mechanistic understanding is often limited when catalysts possess multiple active sites-such as sites associated with either the step edges or the close-packed terraces of inorganic nanoparticles2-4-with distinct activities that cannot be measured simultaneously. An example is the oxidation of carbon monoxide over platinum surfaces, one of the oldest and best studied heterogeneous reactions. In 1824, this reaction was recognized to be crucial for the function of the Davy safety lamp, and today it is used to optimize combustion, hydrogen production and fuel-cell operation5,6. The carbon dioxide products are formed in a bimodal kinetic energy distribution7-13; however, despite extensive study 5 , it remains unclear whether this reflects the involvement of more than one reaction mechanism occurring at multiple active sites12,13. Here we show that the reaction rates at different active sites can be measured simultaneously, using molecular beams to controllably introduce reactants and slice ion imaging14,15 to map the velocity vectors of the product molecules, which reflect the symmetry and the orientation of the active site 16 . We use this velocity-resolved kinetics approach to map the oxidation rates of carbon monoxide at step edges and terrace sites on platinum surfaces, and find that the reaction proceeds through two distinct channels11-13: it is dominated at low temperatures by the more active step sites, and at high temperatures by the more abundant terrace sites. We expect our approach to be applicable to a wide range of heterogeneous reactions and to provide improved mechanistic understanding of the contribution of different active sites, which should be useful in the design of improved catalysts.

Entities:  

Year:  2018        PMID: 29899477     DOI: 10.1038/s41586-018-0188-x

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  5 in total

1.  Measuring Transient Reaction Rates from Nonstationary Catalysts.

Authors:  Dmitriy Borodin; Kai Golibrzuch; Michael Schwarzer; Jan Fingerhut; Georgios Skoulatakis; Dirk Schwarzer; Thomas Seelemann; Theofanis Kitsopoulos; Alec M Wodtke
Journal:  ACS Catal       Date:  2020-11-17       Impact factor: 13.084

2.  Kinetics of NH3 Desorption and Diffusion on Pt: Implications for the Ostwald Process.

Authors:  Dmitriy Borodin; Igor Rahinov; Oihana Galparsoro; Jan Fingerhut; Michael Schwarzer; Kai Golibrzuch; Georgios Skoulatakis; Daniel J Auerbach; Alexander Kandratsenka; Dirk Schwarzer; Theofanis N Kitsopoulos; Alec M Wodtke
Journal:  J Am Chem Soc       Date:  2021-10-21       Impact factor: 15.419

3.  Application of an Event-Based Camera for Real-Time Velocity Resolved Kinetics.

Authors:  Kai Golibrzuch; Sven Schwabe; Tianli Zhong; Kim Papendorf; Alec M Wodtke
Journal:  J Phys Chem A       Date:  2022-03-23       Impact factor: 2.781

4.  Adsorption and Absorption Energies of Hydrogen with Palladium.

Authors:  Michael Schwarzer; Nils Hertl; Florian Nitz; Dmitriy Borodin; Jan Fingerhut; Theofanis N Kitsopoulos; Alec M Wodtke
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2022-08-19       Impact factor: 4.177

5.  NO Binding Energies to and Diffusion Barrier on Pd Obtained with Velocity-Resolved Kinetics.

Authors:  Dmitriy Borodin; Igor Rahinov; Jan Fingerhut; Michael Schwarzer; Stefan Hörandl; Georgios Skoulatakis; Dirk Schwarzer; Theofanis N Kitsopoulos; Alec M Wodtke
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2021-05-24       Impact factor: 4.126

  5 in total

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