Oxygen Reduction Electrocatalysis with Epitaxially Grown Spinel MnFe$_{2}$O$_{4}$ and Fe$_{3}$O$_{4}$
Alexandria R. C. Bredar, Miles D. Blanchet, Andricus R. Burton,, Bethany Matthews, Steven R. Spurgeon, Ryan B. Comes, Byron H. Farnum

TL;DR
This study investigates epitaxially grown MnFe₂O₄ and Fe₃O₄ spinel oxide films as catalysts for oxygen reduction, revealing surface termination effects and highlighting challenges in using single-crystal spinel materials for ORR catalysis.
Contribution
It provides new insights into the surface chemistry and electrocatalytic behavior of epitaxial spinel oxide films, contrasting with nanocrystalline counterparts.
Findings
Oxygen reduction occurs at both Mn and Fe redox features.
Diffusion limited current achieved only at Fe reduction potentials.
Low Mn surface termination density affects catalytic performance.
Abstract
Nanocrystalline MnFeO has shown promise as a catalyst for the oxygen reduction reaction (ORR) in alkaline solutions, but the material has been lightly studied as highly ordered thin film catalysts. To examine the role of surface termination and Mn and Fe site occupancy, epitaxial MnFeO and FeO spinel oxide films were grown on (001) and (111) oriented Nb:SrTiO perovskite substrates using molecular beam epitaxy and studied as electrocatalysts for the oxygen reduction reaction (ORR). HRXRD and XPS show synthesis of pure phase materials while STEM and RHEED analysis demonstrate island-like growth of (111) surface terminated pyramids on both (001) and (111) oriented substrates, consistent with the literature and attributed to lattice mismatch between the spinel films and perovskite substrate. Cyclic voltammograms under an N atmosphere revealed…
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Taxonomy
TopicsElectrocatalysts for Energy Conversion · Advanced battery technologies research · Supercapacitor Materials and Fabrication
