From Doped Coordination Polymer Precursor to Cobalt‐Doped ZnO Electrocatalyst for Alkaline Hydrogen Evolution Reaction

Author:

Lontio Fomekong Roussin1234ORCID,Kammi Yontchoum Paulin1,Matemb Ma Ntep Tobie Junior5,Tedjieukeng Kamta Hypolite Mathias1,Kenfack Tsobnang Patrice6,Krüger Svitlana2,Šturala Jiří3,Sofer Zdenek3,Janiak Christoph5,Saruhan Bilge2,Delcorte Arnaud4,Lambi John Ngolui1

Affiliation:

1. Higher Teacher Training College University of Yaounde I Yaounde P.O. BOX 47 Cameroon

2. German Aerospace Center Institute of Materials Research Linder Hoehe Cologne 51147 Germany

3. Department of Inorganic Chemistry University of Chemistry and Technology Technicka 5 Prague 16628 Czech Republic

4. Institute of Condensed Matter and Nanoscience Université catholique de Louvain 1 Place Louis Pasteur Louvain‐la‐Neuve 1348 Belgium

5. Institut für Anorganische Chemie Heinrich‐Heine‐Universität Düsseldorf Düsseldorf D‐ 40204 Germany

6. Department of Chemistry University of Dschang Dschang P.O.BOX 67 Cameroon

Abstract

The large‐scale application of water electrolysis, for clean H2 production, requires the development of eco‐friendly and low‐cost electrocatalysts with high activity for hydrogen evolution reaction (HER) in alkaline media. The excellent alternatives to the benchmark noble metal‐based HER electrocatalyst are transition metal oxides (TMO). Because of the nontoxicity, cost‐effectiveness, availability, and easy electronic structure tuning, zinc oxide (ZnO) is a good TMO candidate. However, ZnO shows poor performance for HER electrocatalysis and therefore has been much less reported. Herein, it is reported that ZnO can be developed as a good HER electrocatalyst in alkaline media through simultaneously proper cobalt loading at the precursor level (coordination polymer) and defects engineering. The optimum amount of cobalt in ZnO shows an overpotential of 385 mV at 10 mA cm−2 (lower than that of ZnO and Co3O4) and a small Tafel slope of 76 mV dec−1. The introduction of cobalt at the precursor level and subsequently in the wurtzite frame of ZnO as revealed by the analyses, allows to considerably lower the bandgap and increasing the number of defects in the structure, thereby boosting the electrocatalytic performance. This work highlights the potential of cheap and environmentally friendly TMO as alternative HER electrocatalysts for large‐scale alkaline water electrolysis.

Publisher

Wiley

Subject

Linguistics and Language,Anthropology,History,Language and Linguistics,Cultural Studies

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