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Digging Its Own Site: Linear Coordination Stabilizes a Pt1/Fe2O3Single-Atom Catalyst

Authors :
Rafsanjani-Abbasi, Ali
Buchner, Florian
Lewis, Faith J.
Puntscher, Lena
Kraushofer, Florian
Sombut, Panukorn
Eder, Moritz
Pavelec, Jiří
Rheinfrank, Erik
Franceschi, Giada
Birschitzky, Viktor
Riva, Michele
Franchini, Cesare
Schmid, Michael
Diebold, Ulrike
Meier, Matthias
Madsen, Georg K. H.
Parkinson, Gareth S.
Source :
ACS Nano; October 2024, Vol. 18 Issue: 39 p26920-26927, 8p
Publication Year :
2024

Abstract

Determining the local coordination of the active site is a prerequisite for the reliable modeling of single-atom catalysts (SACs). Obtaining such information is difficult on powder-based systems and much emphasis is placed on density functional theory computations based on idealized low-index surfaces of the support. In this work, we investigate how Pt atoms bind to the (11̅02) facet of α-Fe2O3; a common support material in SACs. Using a combination of scanning tunneling microscopy, X-ray photoelectron spectroscopy, and an extensive computational evolutionary search, we find that Pt atoms significantly reconfigure the support lattice to facilitate a pseudolinear coordination to surface oxygen atoms. Despite breaking three surface Fe–O bonds, this geometry is favored by 0.84 eV over the best configuration involving an unperturbed support. We suggest that the linear O–Pt–O configuration is common in reactive Pt-based SAC systems because it balances thermal stability with the ability to adsorb reactants from the gas phase. Moreover, we conclude that extensive structural searches are necessary to determine realistic active site geometries in single-atom catalysis.

Details

Language :
English
ISSN :
19360851 and 1936086X
Volume :
18
Issue :
39
Database :
Supplemental Index
Journal :
ACS Nano
Publication Type :
Periodical
Accession number :
ejs67423764
Full Text :
https://doi.org/10.1021/acsnano.4c08781