Advancing single-atom catalysts: engineered metal-organic platforms on surfaces
Abstract
Recent advances in nanomaterials have pushed the boundaries of nanoscale fabrication to the limit of single atoms (SAs), particularly in heterogeneous catalysis. Single atom catalysts (SACs), comprising minute amounts of transition metals dispersed on inert substrates, have emerged as prominent materials in this domain. However, overcoming the tendency of these SAs to cluster beyond cryogenic temperatures and precisely arranging them on surfaces pose significant challenges. Employing organic templates for orchestrating and modulating the activity of single atoms holds promise. Here, we introduce a novel single atom platform (SAP) wherein atoms are firmly anchored to specific coordination sites distributed along carbon-based polymers, synthesized via on-surface synthesis (OSS). These SAPs exhibit atomiclevel structural precision and stability, even at elevated temperatures. The asymmetry in the electronic states at the active sites anticipates the enhanced reactivity of these precisely defined reactive centers. Upon exposure to CO and CO2 gases at low temperatures, the SAP demonstrates excellent trapping capabilities. Fine-tuning the structure and properties of the coordination sites offers unparalleled flexibility in tailoring functionalities, thus opening avenues for previously untapped potential in catalytic applications.
Keywords
Cite
@article{arxiv.2409.13560,
title = {Advancing single-atom catalysts: engineered metal-organic platforms on surfaces},
author = {Amogh Kinikar and Xiushang Xu and Takatsugu Onishi and Andres Ortega-Guerrero and Roland Widmer and Nicola Zema and Conor Hogan and Luca Camilli and Luca Persichetti and Carlo A. Pignedoli and Roman Fasel and Akimitsu Narita and Marco Di Giovannantonio},
journal= {arXiv preprint arXiv:2409.13560},
year = {2024}
}
Comments
Main text (12 pages, 4 figures) and supplementary information (15 pages, 16 figures)