Composites of Titanium–Molybdenum Mixed Oxides and Non-Traditional Carbon Materials: Innovative Supports for Platinum Electrocatalysts for Polymer Electrolyte Membrane Fuel Cells

Author:

Ayyubov Ilgar12ORCID,Tálas Emília1,Borbáth Irina1,Pászti Zoltán1,Silva Cristina12ORCID,Szegedi Ágnes1ORCID,Kuncser Andrei3ORCID,Yazici M. Suha4,Sajó István E.5ORCID,Szabó Tamás6ORCID,Tompos András1ORCID

Affiliation:

1. Institute of Materials and Environmental Chemistry, HUN-REN Research Centre for Natural Sciences, Magyar Tudósok körútja 2, H-1117 Budapest, Hungary

2. Department of Physical Chemistry and Materials Science, Faculty of Chemical Technology and Biotechnology, Budapest University of Technology and Economics, Műegyetem rkp. 3., H-1111 Budapest, Hungary

3. National Institute of Materials Physics, 405A Atomistilor Street, 077125 Magurele, Romania

4. Energy Institute, Istanbul Technical University, Maslak, 34467 Istanbul, Turkey

5. Szentágothai Research Centre, University of Pécs, Ifjúság u. 20., H-7624 Pécs, Hungary

6. Department of Physical Chemistry and Materials Science, University of Szeged, Rerrich Béla tér 1, H-6720 Szeged, Hungary

Abstract

TiO2-based mixed oxide–carbon composite support for Pt electrocatalysts provides higher stability and CO tolerance under the working conditions of polymer electrolyte membrane fuel cells compared to traditional carbon supports. Non-traditional carbon materials like graphene nanoplatelets and graphite oxide used as the carbonaceous component of the composite can contribute to its affordability and/or functionality. Ti(1−x)MoxO2-C composites involving these carbon materials were prepared through a sol–gel route; the effect of the extension of the procedure through a solvothermal treatment step was assessed. Both supports and supported Pt catalysts were characterized by physicochemical methods. Electrochemical behavior of the catalysts in terms of stability, activity, and CO tolerance was studied. Solvothermal treatment decreased the fracture of graphite oxide plates and enhanced the formation of a reduced graphene oxide-like structure, resulting in an electrically more conductive and more stable catalyst. In parallel, solvothermal treatment enhanced the growth of mixed oxide crystallites, decreasing the chance of formation of Pt–oxide–carbon triple junctions, resulting in somewhat less CO tolerance. The electrocatalyst containing graphene nanoplatelets, along with good stability, has the highest activity in oxygen reduction reaction compared to the other composite-supported catalysts.

Funder

National Laboratory for Renewable Energy

Recovery and Resilience Facility of the European Union

National Research, Development and Innovation Fund of Hungary

Visegrad Group-Japan

Publisher

MDPI AG

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