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Updated: Sep 2, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Metal-Support Interfaces in Pt1/γ-Al2O3 Single Atom Catalysts with Atomic-Level Precision
Domenico Gioffrè1, Martin Cotoni2, Pierre Florian1,3
1Department of Chemistry and Applied Biosciences, ETH Zürich, CH-8093Zürich, Switzerland.
Abstract:
Single atom catalysts (SACs) appear as a promising class of materials featuring isolated metal atoms anchored to supports, where the advantages of heterogeneous catalysis are combined with a maximized noble metal atom usage. In SACs, each metal atom is fully exposed to the support surface; it is therefore critical to elucidate the nature of the metal-support interface to identify the active species and design tailored, more efficient materials. Among SACs, Pt1/γ-Al2O3, active toward CO oxidation and isomerization of olefins, represents a prototypical system. However, the chemical complexity and poor crystallinity of γ-Al2O3 hinders an atomistic description via conventional techniques (XAS, TEM) only. Here, we report the study, via multinuclear solid-state NMR and DFT modeling, of a series of Pt SACs on γ-Al2O3 supports, prepared by surface organometallic chemistry followed by calcination. This approach clarifies the coordination environment of Pt1/γ-Al2O3, revealing that highly oxidized Pt atoms are preferentially anchored by undercoordinated Al sites at the (110)b-(100) edge. The Pt atoms have a distorted square planar or square pyramidal environment and are stabilized through [4-6]Al-O-Pt and [4]Al-OH-Pt linkages. Pyridine absorption studies reveal the presence of Brønsted acidic sites, assigned to [4]Al-OH-Pt edge moieties, through DFT modeling. The findings establish morphological features of γ-Al2O3 supports needed to stabilize SACs and provide a roadmap for building accurate SAC-support models using NMR and DFT.
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