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Engineering Hierarchically Nano-Structured Cu Foams : Dynamic Hydrogen Bubble Templated Binder-Free Freestanding Electrodes for Energy Applications

Titelangaben

Attia, Mina ; Zhao, Chen ; Lindner, Miriam ; Hawe, Philipp ; Roth, Christina:
Engineering Hierarchically Nano-Structured Cu Foams : Dynamic Hydrogen Bubble Templated Binder-Free Freestanding Electrodes for Energy Applications.
In: Small. Bd. 22 (2026) Heft 8 . - e09389.
ISSN 1613-6829
DOI: https://doi.org/10.1002/smll.202509389

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Link zum Volltext (externe URL): Volltext

Angaben zu Projekten

Projekttitel:
Offizieller Projekttitel
Projekt-ID
Confinement-Effekte bei der CO2-Elektroreduktion - mechanistische Untersuchungen an oberflächenaktiven, porösen Cu-Elektroden
495717797
Open Access Publizieren
Ohne Angabe

Projektfinanzierung: Deutsche Forschungsgemeinschaft

Abstract

The intelligent design of hierarchical metallic structures with optimized performance for targeted applications, such as energy devices, sensors, and catalysis, remains a significant challenge. In this study, electrochemically generated hydrogen bubbles are employed as dynamic negative templates for copper electrodeposition. This so-called dynamic hydrogen bubble templating approach (DHBT) yields highly porous hierarchical copper foams adorned with surface nano-structures. A comprehensive investigation of DHBT synthesis parameters is provided, organized into four categories: (1) deposition current density and time; (2) current modes, namely direct, pulsed, reversed, and alternating regimes; (3) physical conditions, including stirring and temperature; and (4) bath composition. The results demonstrate that morphological descriptors, such as pore size and density, foam thickness, electrochemically active surface area (ECSA), and nanoscale surface features, can be systematically and reproducibly tuned by varying these DHBT parameters. As a proof of concept, a simple three-step protocol for the fabrication of copper foam gas diffusion electrodes (GDEs) is presented. The resulting GDEs show promising CO2 reduction performance, achieving C2+ products Faradaic efficiencies of approximately 50% at -1.1 V versus reversible hydrogen electrode (RHE) and partial current densities of up to 104 mA cm−2 at -2.5 V versus RHE, with good operational stability tested for 12 h.

Weitere Angaben

Publikationsform: Artikel in einer Zeitschrift
Begutachteter Beitrag: Ja
Keywords: binder-free nano-structures; CO2 reduction; cu electrodeposition; dynamic hydrogen bubble templating; free-standing Cu foams; power-to-value
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: 600 Technik, Medizin, angewandte Wissenschaften > 620 Ingenieurwissenschaften
Eingestellt am: 02 Mär 2026 09:12
Letzte Änderung: 02 Mär 2026 09:12
URI: https://eref.uni-bayreuth.de/id/eprint/96468