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Tailoring the Anisotropic Oxygen Transport Properties in Bulk Ceramic Membranes Based on a Ruddlesden-Popper Oxide by Applying Magnetic Fields
1 Introduction Recently, mixed ionic-electronic conductors (MIECs) have attracted growing interest due to their role as oxygen-transporting membranes (OTMs) in various applications.[1] These include the production of high-purity oxygen,[2, 3] integration into petrochemistry processes such as the oxidative coupling of methane to ethylene and/or ethane,[4, 5] utilization in CO2 capture and storage technologies,[6-8] and as cathode materials in solid oxide fuel cells (SOFCs)[9] or rechargeable...
Enhanced Performance of La2NiO4+δ Oxygen-Transporting Membranes Using Crystal Facet Engineering via Microemulsion-Based Synthesis
1. Introduction Click to copy section linkSection link copied! Within the realm of ceramic membranes, mixed ionic–electronic conductors (MIECs) have garnered significant interest owing to their vast potential for various applications. Particularly prominent is their role in the industrial gas and energy sector, as well as in petrochemical processes necessitating oxygen separation from the air at elevated temperatures, where MIECs act as oxygen transport membranes (OTMs).
Inside Cover: Multiplying Oxygen Permeability of a Ruddlesden‐Popper Oxide by Orientation Control via Magnets (Angew. Chem. Int. Ed. 8/2024)
Prof. Dr. Anke Weidenkaff Fraunhofer Research Institution for Materials Recycling and Resource Strategies IWKS, Brentanostr. 2a, 63755 Alzenau, Germany Department of Materials and Earth Sciences, Technical University Darmstadt, Peter-Grünberg-Str. 2, 64287 Darmstadt, Germany Search for more papers by this author
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