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Oxygen Management in Ruthenium–Cerium Anode Facilitates Water Adsorption and Bubble Desorption for Oxygen Evolution at High Current Densities

Titelangaben

Das, Aparna M. ; Golovanova, Viktoria ; Guha, Anku ; Ferreira Gomes Lobo, Bruna ; Llorens Rauret, David ; Manjón, Alba Garzón ; Pinilla-Sanchez, Adrián ; Li, Lulu ; Morales-Vidal, Jordi ; Chen, Tengyu ; Xia, Lu ; Ram, Ranit ; Rogolino, Andrea ; Lobo, Carlos M. S. ; Wang, Kaiwen ; Andreu, Teresa ; Roth, Christina ; Velasco-Vélez, Juan Jesús ; Arbiol, Jordi ; López, Núria ; García de Arquer, F. Pelayo:
Oxygen Management in Ruthenium–Cerium Anode Facilitates Water Adsorption and Bubble Desorption for Oxygen Evolution at High Current Densities.
In: ACS Catalysis. (2026) .
ISSN 2155-5435
DOI: https://doi.org/10.1021/acscatal.6c04063

Volltext

Link zum Volltext (externe URL): Volltext

Angaben zu Projekten

Projekttitel:
Offizieller Projekttitel
Projekt-ID
NASCENT - Nanoscale Advance of CO2 Electroreduction
101077243
ICONIC - Integrated COnversion of NItrate and Carbonate streams
101115204
CERCA
SGR 2021 01455
AMaDE
PID2023-149158OB-C43
METCAM-FIB
IU16-014206
Live-XAS
05K22WC1
HighHy - Development of highly active anodes for anion exchange membrane electrolysers to enable low-cost green hydrogen
03SF0689B

Projektfinanzierung: Bundesministerium für Bildung und Forschung
Generalitat de Catalunya
Fundación Ramón Areces
European Regional Development Fund
European Union Next Generation
Spanish Ministry of Science and Innovation
Severo Ochoa Excellence Accreditation
Marie Skłodowska-Curie Actions

Abstract

The production of hydrogen via acidic water electrolysis requires efficient oxygen evolution reaction (OER) at high current densities. However, this is often limited by oxygen bubble accumulation, which blocks active sites and restricts water access. Although bubble release and water access are closely linked, these interfacial processes are rarely controlled together. We engineer a ruthenium oxide–cerium oxide (RuOx–CeOx) catalyst where CeOx is observed to modulate surface oxygen vacancies during operation, enhancing water availability and promoting bubble detachment in RuOx. In situ X-ray absorption studies show that CeOx dynamically facilitates the formation of surface oxygen vacancies, and Raman spectroscopy indicates improved electrolyte wetting under applied potentials. Simulations reveal that oxygen-depleted RuOx surfaces favor water accumulation, thereby facilitating the initiation of OER. This results in distinct bubble dynamics with a four-fold reduction in median bubble contact area and lower overpotentials at high current densities in RuOx–CeOx compared to RuOx. Implementation in a proton exchange membrane water electrolyzer achieves a 0.1 V reduction in full-cell potential at 1 A·cm–2, linking surface chemistry to device-level outcomes.

Weitere Angaben

Publikationsform: Artikel in einer Zeitschrift
Begutachteter Beitrag: Ja
Institutionen der Universität: Fakultäten > Fakultät für Ingenieurwissenschaften > Lehrstuhl Werkstoffverfahrenstechnik > Lehrstuhl Werkstoffverfahrenstechnik - Univ.-Prof. Dr.-Ing. Christina Roth
Titel an der UBT entstanden: Ja
Themengebiete aus DDC: 500 Naturwissenschaften und Mathematik > 540 Chemie
600 Technik, Medizin, angewandte Wissenschaften > 620 Ingenieurwissenschaften
Eingestellt am: 06 Okt 2026 07:03
Letzte Änderung: 06 Okt 2026 07:03
URI: https://eref.uni-bayreuth.de/id/eprint/99602