DFT Atomic‐Scale Insight into Pt/Cu Single Atom Alloy Clusters Supported on γ‐Al2O3: The Effect of Hydrogen Environment

Author:

Shahrokhi Masoud1,Mineva Tzonka1ORCID,Benabbas Abdennour2,Especel Catherine2,Le Valant Anthony2,Ricolleau Christian3,Wang Guillaume3,Nelayah Jaysen3ORCID,Epron Florence2ORCID,Guesmi Hazar1ORCID

Affiliation:

1. ICGM University Montpellier CNRS, ENSCM 1919 Rte de Mende 34293 Montpellier Cedex 5 France

2. CNRS Université de Poitiers Institut de Chimie des Milieux et des Matériaux de Poitiers (IC2MP) F-86000 Poitiers France

3. Université Paris Cité CNRS Laboratoire Matériaux et Phénomènes Quantiques 10 rue Alice Domon et Léonie Duquet 75013 Paris France

Abstract

AbstractSingle atom alloy (SAA) clusters formed by anchoring single atoms in small supported host clusters are emerging as catalysts with high performance. In this work, density functional theory (DFT) calculations and ab‐initio molecular dynamics (AIMD) simulations are performed to study the stability and the structure evolution of γ‐alumina‐supported platinum/copper SAA clusters of sub‐nanometer size in hydrogen environment. Due to the strong dynamic nature of both Cu cluster and anchored Pt single atom and their evolving interaction with the support, different isomers with different geometric and energetic properties are predicted. Extensive sampling through AIMD simulations reveals strong effect of hydrogen on the location of Pt single atom and strong variation of the cluster shape, evolving from 3D to concave and planar shapes wetting the alumina support. Interfacial site location of Pt single atom is found to be hydrogen coverage dependent. When the hydrogen coverage increases, the Pt single atom located preferentially at the interfacial site is pulled up by hydrogen atoms toward the upper surface Cu layers. The interaction of Pt/Cu cluster with alumina is predicted to decrease with increasing hydrogen coverage. Finally, electronic structure analysis reveals dramatic effect of hydrogen on the metallic nature of the catalysts.

Publisher

Wiley

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