Pd/Cu Single Atom Alloys for Selective Alcohol Dehydrogenation: From Single Crystalline to Nanostructured Model Catalysts
Abstract
Abstract Heterogeneous catalysts based on Single Atom Alloys (SAA) play a significant role in numerous technical processes. The fundamental working principles of these systems, however, remain poorly understood, especially the aspects related to the nanoscopic nature of bimetallic particles and the associated structure‐reactivity relationships. In this study, we developed for the first time well‐defined SAA catalysts consisting of Pd atomically dispersed in Cu nanoparticles prepared under ultra‐high vacuum (UHV) conditions on model Al 2 O 3 /NiAl(110) support. Employing a unique combination of surface sensitive techniques – scanning tunneling microscopy (STM), infrared reflection absorption spectroscopy (IRAS), molecular beams – and density functional theory (DFT) calculations, we performed detailed structural characterization of these systems at the microscopic level. We demonstrate that Pd disperses atomically in Cu nanoparticles and becomes partly negatively charged. Importantly, these Pd/Cu nanostructured systems show an outstanding catalytic performance in selective dehydrogenation of butanol and exhibit 100% selectivity toward butanal over a broad range of Pd loadings – the property that cannot be reproduced employing simplified single crystalline Pd/Cu(111) counterparts. The developed approach for preparation and characterization of these nanostructured SAA‐catalysts lays a foundation for further fundamental‐level catalytic studies on this important class of materials and their rational design for practical applications.
Article Details
Authors (8)
Philipp A. Fredersdorff
Institute of Physical Chemistry Christian‐Albrechts‐University Kiel Max‐Eyth‐Str. 1 Kiel 24118 Germany
Jan Smyczek
Institute of Physical Chemistry Christian‐Albrechts‐University Kiel Max‐Eyth‐Str. 1 Kiel 24118 Germany
Carsten Schröder
Institute of Physical Chemistry Christian‐Albrechts‐University Kiel Max‐Eyth‐Str. 1 Kiel 24118 Germany
Paul Fröhlich
Institute of Physical Chemistry Christian‐Albrechts‐University Kiel Max‐Eyth‐Str. 1 Kiel 24118 Germany
Paul Kohlmorgen
Institute of Physical Chemistry Christian‐Albrechts‐University Kiel Max‐Eyth‐Str. 1 Kiel 24118 Germany
Stephan Appelfeller
MAX IV Laboratory Lund University Lund 22100 Sweden
Konstantin Neyman
Departament de Ciència de Materials i Química Física & Institut de Química Teòrica i Computacional (IQTC‐UB) Universitat de Barcelona Barcelona 08028 Spain
Swetlana Schauermann
Institute of Physical Chemistry Christian‐Albrechts‐University Kiel Max‐Eyth‐Str. 1 Kiel 24118 Germany