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Interface engineering of Pt–ZnO–CeO2 by atomic layer deposition for advanced applications

Efremova, Anastasiia and Ballai, Gergő and Szamosvölgyi, Ákos and Szenti, Imre and Kutus, Bence and Kiss, János and Sápi, András and Kukovecz, Ákos and Kónya, Zoltán (2026) Interface engineering of Pt–ZnO–CeO2 by atomic layer deposition for advanced applications. MATERIALS & DESIGN, 263. No. 115640. ISSN 0264-1275 (print); 1873-4197 (online)

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Abstract

The precise design of metal-oxide interfaces in heterogeneous catalysts is crucial for optimizing activity and selectivity in reactions such as ethanol decomposition. In this study, Pt_ZnO_CeO2 composite catalysts were synthesized via atomic layer deposition (ALD) with systematically varied ZnO loadings to investigate the influence of support structure on platinum nucleation, interfacial properties, and catalytic performance. Highresolution TEM, XPS, ICP-MS reveal that ZnO strongly affects Pt growth, leading to non-monotonic trends in nanoparticle size, dispersion, and loading. These structural effects translate into distinct electronic interactions at Pt/CeO2, ZnO/CeO2 and Pt/ZnO interfaces, as reflected by XPS analysis. To probe the catalytic relevance of these interfaces, ethanol decomposition was employed as an interface-sensitive reaction. The results demonstrated that moderate ZnO loading (3–5 cycles) generated a Pt/ZnO/CeO2 interface, that significantly increased ethanol conversion and promoted C1-product formation. At higher ZnO coverage (30 cycles), the catalyst surface was dominated by Pt/ZnO interactions, resulting in reduced C–C bond cleavage activity. These trends were supported by in situ DRIFTS by identifying the suppression of acetate formation and promotion of aldehyde intermediates at Pt-ZnO surfaces. These findings underscore the critical role of interfacial engineering via ALD in modulating catalyst structure, metal-support interactions, and reaction pathways.

Item Type: Article
Subjects: Q Science / természettudomány > QC Physics / fizika > QC173.4 Material science / anyagtudomány
Q Science / természettudomány > QD Chemistry / kémia
SWORD Depositor: MTMT SWORD
Depositing User: MTMT SWORD
Date Deposited: 24 Sep 2026 06:51
Last Modified: 24 Sep 2026 06:51
URI: https://real.mtak.hu/id/eprint/247409

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