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Role of Gas Dropouts in CO₂ Methanation over MOF-Derived Ni₃Fe@C Catalysts : An In Situ XAS and PDF Study

Titelangaben

Manzoni, Fabio ; Strübbe, Sven ; Rohrbach, Leif ; Boniface, Maxime ; Lunkenbein, Thomas ; Schoch, Roland ; Kleist, Wolfgang ; Bauer, Matthias ; Zobel, Mirijam:
Role of Gas Dropouts in CO₂ Methanation over MOF-Derived Ni₃Fe@C Catalysts : An In Situ XAS and PDF Study.
In: ChemCatChem. Bd. 17 (2025) Heft 18 . - e00859.
ISSN 1867-3899
DOI: https://doi.org/10.1002/cctc.202500859

Volltext

Link zum Volltext (externe URL): Volltext

Angaben zu Projekten

Projekttitel:
Offizieller Projekttitel
Projekt-ID
SPP 2080: Katalysatoren und Reaktoren unter dynamischen Betriebsbedingungen für die Energiespeicherung und -wandlung
358713534

Projektfinanzierung: Deutsche Forschungsgemeinschaft

Abstract

With industrial chemical processes facing the challenges of renewable energy supply, catalysts are needed that withstand fluctuations of operating conditions. For methanation reactions using hydrogen from electrocatalytic water splitting, dropouts of hydrogen are amongst the realistic scenarios. While Ni-based catalysts are the most widely used, bimetallic Ni/Fe-based catalysts recently emerged as superior. A new method of preparing highly active metallic catalysts is the decomposition of metal-organic frameworks. Even though it is difficult to control the particle size distribution and the homogeneity of the formed nanoparticles with this method, the carbonaceous features present between the nanoparticles permit avoiding the use of support, leading to a high-loading catalyst with superior stability. Here, we investigate with in situ X-ray absorption spectroscopy and pair distribution function analysis the structural details of a Ni3Fe@C methanation catalyst derived from a metal-organic framework during its activation and catalysis under H2-dropout conditions. Despite the similarity of these phases, it was possible to identify two fcc phases of Ni3Fe and Ni coexisting during catalytic cycling, with a Fe2NiO4 spinel phase appearing during dropouts. This indicates oxidation of the particle surface in the absence of hydrogen, which can be fully recovered by reactivation in pure hydrogen atmosphere, providing high stability of the catalyst during an industrially relevant dropout scenario.

Weitere Angaben

Publikationsform: Artikel in einer Zeitschrift
Begutachteter Beitrag: Ja
Zusätzliche Informationen: WOS:001530131700001
Keywords: In situ characterization; Metal organic framework; Methanation; PDF; XAS
Institutionen der Universität: Fakultäten > Fakultät für Biologie, Chemie und Geowissenschaften > Fachgruppe Chemie > Lehrstuhl Operando-Analytik elektrochemischer Energiespeicher > Lehrstuhl Operando-Analytik elektrochemischer Energiespeicher - Univ.-Prof. Dr. Thomas Lunkenbein
Fakultäten > Fakultät für Biologie, Chemie und Geowissenschaften > Fachgruppe Chemie > Ehemalige ProfessorInnen > Juniorprofessur Festkörperchemie - Mesostrukturierte Materialien - Juniorprof. Dr. Mirijam Zobel
Titel an der UBT entstanden: Nein
Themengebiete aus DDC: 500 Naturwissenschaften und Mathematik > 540 Chemie
Eingestellt am: 25 Feb 2026 08:28
Letzte Änderung: 25 Feb 2026 08:28
URI: https://eref.uni-bayreuth.de/id/eprint/96405