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Unveiling the Catalytic Potential of Topological Nodal-Line Semimetal AuSn 4 for Hydrogen Evolution and CO 2 Reduction.

Authors :
Boukhvalov DW
D'Olimpio G
Mazzola F
Kuo CN
Mardanya S
Fujii J
Politano GG
Lue CS
Agarwal A
Vobornik I
Torelli P
Politano A
Source :
The journal of physical chemistry letters [J Phys Chem Lett] 2023 Mar 30; Vol. 14 (12), pp. 3069-3076. Date of Electronic Publication: 2023 Mar 22.
Publication Year :
2023

Abstract

In recent years, the correlation between the existence of topological electronic states in materials and their catalytic activity has gained increasing attention, due to the exceptional electron conductivity and charge carrier mobility exhibited by quantum materials. However, the physicochemical mechanisms ruling catalysis with quantum materials are not fully understood. Here, we investigate the chemical reactivity, ambient stability, and catalytic activity of the topological nodal-line semimetal AuSn <subscript>4</subscript> . Our findings reveal that the surface of AuSn <subscript>4</subscript> is prone to oxidation, resulting in the formation of a nanometric SnO <subscript>2</subscript> skin. This surface oxidation significantly enhances the material's performance as a catalyst for the hydrogen evolution reaction in acidic environments. We demonstrate that the peculiar atomic structure of oxidized AuSn <subscript>4</subscript> enables the migration of hydrogen atoms through the Sn-O layer with a minimal energy barrier of only 0.19 eV. Furthermore, the Volmer step becomes exothermic in the presence of Sn vacancies or tin-oxide skin, as opposed to being hindered in the pristine sample, with energy values of -0.62 and -1.66 eV, respectively, compared to the +0.46 eV energy barrier in the pristine sample. Our model also suggests that oxidized AuSn <subscript>4</subscript> can serve as a catalyst for the hydrogen evolution reaction in alkali media. Additionally, we evaluate the material's suitability for the carbon dioxide reduction reaction, finding that the presence of topologically protected electronic states enhances the migration of hydrogen atoms adsorbed on the catalyst to carbon dioxide.

Details

Language :
English
ISSN :
1948-7185
Volume :
14
Issue :
12
Database :
MEDLINE
Journal :
The journal of physical chemistry letters
Publication Type :
Academic Journal
Accession number :
36947176
Full Text :
https://doi.org/10.1021/acs.jpclett.3c00113