Quantitative Description of Metal Center Organization and Interactions in Single‐Atom Catalysts

Author:

Rossi Kevin1,Ruiz‐Ferrando Andrea23,Akl Dario Faust1,Abalos Victor Gimenez4,Heras‐Domingo Javier2,Graux Romain5,Hai Xiao6,Lu Jiong678,Garcia‐Gasulla Dario4,López Nuria2,Pérez‐Ramírez Javier1ORCID,Mitchell Sharon1ORCID

Affiliation:

1. Institute for Chemical and Bioengineering Department of Chemistry and Applied Biosciences ETH Zurich Vladimir‐Prelog‐Weg 1 Zurich 8093 Switzerland

2. Institute of Chemical Research of Catalonia Avenida Països Catalans 16 Tarragona 43007 Spain

3. Departament de Química Física i Inorgànica Universitat Rovira i Virgili Carrer de Marcellí Domingo 1 Tarragona 43007 Spain

4. Barcelona Supercomputing Center Plaça d'Eusebi Güell 1–3 Barcelona 08034 Spain

5. Institute of Chemical Sciences and Engineering Ecole Polytechnique Fédérale de Lausanne Route Cantonale Lausanne 1015 Switzerland

6. Department of Chemistry National University of Singapore Science Drive 3 Singapore 117543 Singapore

7. Centre for Advanced 2D Materials and Graphene Research Centre National University of Singapore Science Drive 2 Singapore 117546 Singapore

8. Institute for Functional Intelligent Materials National University of Singapore Science Drive 2 Singapore 117544 Singapore

Abstract

AbstractUltra‐high‐density single‐atom catalysts (UHD‐SACs) present unique opportunities for harnessing cooperative effects between neighboring metal centers. However, the lack of tools to establish correlations between the density, types, and arrangements of isolated metal atoms and the support surface properties hinders efforts to engineer advanced material architectures. Here, this work precisely describes the metal center organization in various mono‐ and multimetallic UHD‑SACs based on nitrogen‐doped carbon (NC) supports by coupling transmission electron microscopy with tailored machine‐learning methods (released as a user‐friendly web app) and density functional theory simulations. This approach quantifies the non‐negligible presence of multimers with increasing atom density, characterizes the size and shape of these low‑nuclearity clusters, and identifies surface atom density criteria to ensure isolation. Further, it provides previously inaccessible experimental insights into coordination site arrangements in the NC host, uncovering a repulsive interaction that influences the disordered distribution of metal centers in UHD‐SACs. This observation holds in multimetallic systems, where chemically‐specific analysis quantifies the degree of intermixing. These fundamental insights into the materials chemistry of single‐atom catalysts are crucial for designing catalytic systems with superior reactivity.

Funder

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Generalitat de Catalunya

Ministerio de Ciencia e Innovación

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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