Author
Listed:
- Christopher R. O’Connor
(Harvard University)
- Matthijs A. Spronsen
(Harvard University
Materials Sciences Division, Lawrence Berkeley National Laboratory)
- Tobias Egle
(Harvard University)
- Fang Xu
(Harvard University)
- Heath R. Kersell
(Materials Sciences Division, Lawrence Berkeley National Laboratory)
- Judit Oliver-Meseguer
(Materials Sciences Division, Lawrence Berkeley National Laboratory)
- Mustafa Karatok
(Harvard University)
- Miquel Salmeron
(Materials Sciences Division, Lawrence Berkeley National Laboratory
University of California)
- Robert J. Madix
(Harvard University)
- Cynthia M. Friend
(Harvard University
Harvard University)
Abstract
Heterogeneous catalysts are complex materials with multiple interfaces. A critical proposition in exploiting bifunctionality in alloy catalysts is to achieve surface migration across interfaces separating functionally dissimilar regions. Herein, we demonstrate the enhancement of more than 104 in the rate of molecular hydrogen reduction of a silver surface oxide in the presence of palladium oxide compared to pure silver oxide resulting from the transfer of atomic hydrogen from palladium oxide islands onto the surrounding surface formed from oxidation of a palladium–silver alloy. The palladium–silver interface also dynamically restructures during reduction, resulting in silver–palladium intermixing. This study clearly demonstrates the migration of reaction intermediates and catalyst material across surface interfacial boundaries in alloys with a significant effect on surface reactivity, having broad implications for the catalytic function of bimetallic materials.
Suggested Citation
Christopher R. O’Connor & Matthijs A. Spronsen & Tobias Egle & Fang Xu & Heath R. Kersell & Judit Oliver-Meseguer & Mustafa Karatok & Miquel Salmeron & Robert J. Madix & Cynthia M. Friend, 2020.
"Hydrogen migration at restructuring palladium–silver oxide boundaries dramatically enhances reduction rate of silver oxide,"
Nature Communications, Nature, vol. 11(1), pages 1-6, December.
Handle:
RePEc:nat:natcom:v:11:y:2020:i:1:d:10.1038_s41467-020-15536-x
DOI: 10.1038/s41467-020-15536-x
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