Sol‐Gel‐Derived Ordered Mesoporous High Entropy Spinel Ferrites and Assessment of Their Photoelectrochemical and Electrocatalytic Water Splitting Performance

Author:

Einert Marcus1ORCID,Waheed Arslan1,Lauterbach Stefan2,Mellin Maximilian1ORCID,Rohnke Marcus3ORCID,Wagner Lysander Q.34,Gallenberger Julia1ORCID,Tian Chuanmu1ORCID,Smarsly Bernd M.34ORCID,Jaegermann Wolfram1ORCID,Hess Franziska5ORCID,Schlaad Helmut6ORCID,Hofmann Jan P.1ORCID

Affiliation:

1. Surface Science Laboratory Department of Materials and Earth Sciences Technical University of Darmstadt Otto‐Berndt‐Strasse 3 64287 Darmstadt Germany

2. Institute for Applied Geosciences Geomaterial Science Technical University of Darmstadt Schnittspahnstrasse 9 64287 Darmstadt Germany

3. Center for Materials Research Justus Liebig University Giessen Heinrich‐Buff‐Ring 17 35392 Giessen Germany

4. Institute for Physical Chemistry Justus‐Liebig University Heinrich‐Buff‐Ring 17 35392 Giessen Germany

5. Institute of Chemistry Technical University Berlin Strasse des 17. Juni 124 10623 Berlin Germany

6. University of Potsdam Institute of Chemistry Karl‐Liebknecht‐Str. 24–25 14476 Potsdam Germany

Abstract

AbstractThe novel material class of high entropy oxides with their unique and unexpected physicochemical properties is a candidate for energy applications. Herein, it is reported for the first time about the physico‐ and (photo‐) electrochemical properties of ordered mesoporous (CoNiCuZnMg)Fe2O4 thin films synthesized by a soft‐templating and dip‐coating approach. The A‐site high entropy ferrites (HEF) are composed of periodically ordered mesopores building a highly accessible inorganic nanoarchitecture with large specific surface areas. The mesoporous spinel HEF thin films are found to be phase‐pure and crack‐free on the meso‐ and macroscale. The formation of the spinel structure hosting six distinct cations is verified by X‐ray‐based characterization techniques. Photoelectron spectroscopy gives insight into the chemical state of the implemented transition metals supporting the structural characterization data. Applied as photoanode for photoelectrochemical water splitting, the HEFs are photostable over several hours but show only low photoconductivity owing to fast surface recombination, as evidenced by intensity‐modulated photocurrent spectroscopy. When applied as oxygen evolution reaction electrocatalyst, the HEF thin films possess overpotentials of 420 mV at 10 mA cm−2 in 1 m KOH. The results imply that the increase of the compositional disorder enhances the electronic transport properties, which are beneficial for both energy applications.

Funder

Deutsche Forschungsgemeinschaft

China Scholarship Council

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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