Dissociative hydrogen adsorption on palladium requires aggregates of three or more vacancies
Top Cited Papers
Open Access
- 1 April 2003
- journal article
- letter
- Published by Springer Nature in Nature
- Vol. 422 (6933) , 705-707
- https://doi.org/10.1038/nature01557
Abstract
During reaction, a catalyst surface usually interacts with a constantly fluctuating mix of reactants, products, ‘spectators’ that do not participate in the reaction, and species that either promote or inhibit the activity of the catalyst. How molecules adsorb and dissociate under such dynamic conditions is often poorly understood. For example, the dissociative adsorption of the diatomic molecule H2—a central step in many industrially important catalytic processes—is generally assumed1 to require at least two adjacent and empty atomic adsorption sites (or vacancies). The creation of active sites for H2 dissociation will thus involve the formation of individual vacancies and their subsequent diffusion and aggregation2,3,4,5,6, with the coupling between these events determining the activity of the catalyst surface. But even though active sites are the central component of most reaction models, the processes controlling their formation, and hence the activity of a catalyst surface, have never been captured experimentally. Here we report scanning tunnelling microscopy observations of the transient formation of active sites for the dissociative adsorption of H2 molecules on a palladium (111) surface. We find, contrary to conventional thinking1, that two-vacancy sites seem inactive, and that aggregates of three or more hydrogen vacancies are required for efficient H2 dissociation.Keywords
This publication has 8 references indexed in Scilit:
- Hydrogen adsorption and diffusion on Pd(111)Surface Science, 2003
- Adsorption energies and ordered structures of hydrogen on Pd(111) from density-functional periodic calculationsPhysical Review B, 1998
- Scanning tunneling microscope with continuous flow cryostat sample coolingReview of Scientific Instruments, 1997
- Density-functional periodic study of the adsorption of hydrogen on a palladium (111) surfacePhysical Review B, 1996
- Location of hydrogen adsorbed on palladium (111) studied by low-energy electron diffractionPhysical Review B, 1989
- Adsorption of hydrogen on palladium single crystal surfacesSurface Science, 1974
- The reactions between cyclopentane and deuterium on nickel and nickel-copper alloysJournal of Catalysis, 1972
- A theory of the catalytic surfaceProceedings of the Royal Society of London. Series A, Containing Papers of a Mathematical and Physical Character, 1925