Unveiling Inequality of Atoms in Ultrasmall Pt Clusters: Oxygen Adsorption Limited to the Uppermost Atomic Layer

Author:

Loi Federico1ORCID,Bignardi Luca1ORCID,Perco Deborah1ORCID,Berti Andrea1ORCID,Lacovig Paolo2ORCID,Lizzit Silvano2ORCID,Kartouzian Aras3ORCID,Heiz Ulrich3ORCID,Alfè Dario45ORCID,Baraldi Alessandro12ORCID

Affiliation:

1. Department of Physics University of Trieste via Valerio 2 34127 Trieste Italy

2. Elettra Sincrotrone Trieste AREA Science Park Basovizza 34149 Trieste Italy

3. Chemistry Department & Catalysis Research Center Technical University of Munich Lichtenbergstr. 4 D‐85748 Garching Germany

4. Department of Earth Sciences and London Centre for Nanotechnology University College London Gower Street London WC1E 6BT UK

5. Dipartimento di Fisica Ettore Pancini Università di Napoli Federico II, Monte S. Angelo 80126 Napoli Italy

Abstract

The concept of preferential atomic and molecular adsorption site is of primary relevance in heterogeneous catalysis. In the case of ultrasmall size‐selected clusters, distinguishing the role played by each atom in a reaction is extremely challenging due to their reduced size and peculiar structures. Herein, it is revealed how the inequivalent atoms composing graphene‐supported Pt12 and Pt13 clusters behave differently in the photoinduced dissociation of O2, with only those in the uppermost layer of the clusters being involved in the reaction. In this process, the epitaxial graphene support plays a fundamental active role: its corrugation and pinning induced by the presence of the clusters are crucial for defining the preferential adsorption site on the Pt atomic agglomerates, facilitating the lateral diffusion of physisorbed oxygen at a distance that induces its selective adsorption in the topmost layer of the clusters, and inducing an inhomogeneous charge distribution within the clusters which directly affects the O2 adsorption. The inhomogeneous oxidation of the clusters is resolved by means of synchrotron‐based X‐ray photoelectron spectroscopy and supported by ab initio density functional theory calculations. The possibility to identify the active sites on Pt clusters induced by cluster–support interactions has the potential to enhance the experimentally supported design of nanocatalysts.

Funder

Ministero dell'Università e della Ricerca

HORIZON EUROPE Widening Participation and Strengthening the European Research Area

National Centre for Earth Observation

ARCHER Service

Publisher

Wiley

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