Targeted design of α-MnO2 based catalysts for oxygen reduction

[Display omitted] The paper focuses on theoretical and experimental aspects of an oxide surface optimization for oxygen reduction reaction (ORR). Various doped α-MnO2 based electrocatalysts were prepared by microwave-assisted hydrothermal synthesis and electrochemically characterized to validate den...

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Veröffentlicht in:Electrochimica acta 2016-02, Vol.191, p.452-461
Hauptverfasser: Lehtimäki, Matti, Hoffmannová, Hana, Boytsova, Olga, Bastl, Zdeněk, Busch, Michael, Halck, Niels Bendtsen, Rossmeisl, Jan, Krtil, Petr
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Sprache:eng
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Zusammenfassung:[Display omitted] The paper focuses on theoretical and experimental aspects of an oxide surface optimization for oxygen reduction reaction (ORR). Various doped α-MnO2 based electrocatalysts were prepared by microwave-assisted hydrothermal synthesis and electrochemically characterized to validate density functional theory (DFT) based predictions of the oxidation state and local structure effects on the catalytic activity of α-MnO2 catalysts in ORR. Both theory and experiments conclude that the highest activity in ORR is to be expected in the case of clustered Mn3+ sites which yield activity comparable with that of the polycrystalline Pt. These active sites have to be formed under in-operando conditions and their formation is hindered in doped α-MnO2 catalysts. The activity of the other conceivable active sites based on non-clustered Mn3+ or Mn4+ is inferior to that of clustered Mn3+. The activation of Mn3+ or Mn4+ based active sites leads to a shift in selectivity of the ORR process towards 2 electron formation of hydrogen peroxide.
ISSN:0013-4686
1873-3859
1873-3859
DOI:10.1016/j.electacta.2016.01.070