4.8 Article

In-Liquid Plasma Modified Nickel Foam: NiOOH/NiFeOOH Active Site Multiplication for Electrocatalytic Alcohol, Aldehyde, and Water Oxidation

期刊

ADVANCED ENERGY MATERIALS
卷 12, 期 38, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/aenm.202202098

关键词

5-(hydroxymethyl)furfural oxidation; benzyl alcohol oxidation; gamma-NiFeOOH; in-liquid oxygen plasma; nickel foam; nickel-iron oxyhydroxides; oxygen evolution reaction

资金

  1. Deutsche Forschungsgemeinschaft [EXC 2008/1-390540038 - UniSysCat]
  2. German Federal Ministry of Education and Research (BMBF) [03HY105C]
  3. Einstein Foundation Berlin/EC2/BIG-NSE
  4. Deutsche Forschungsgemeinschaft (DFG) [SFB-CRC1316]
  5. Projekt DEAL
  6. German Federal Ministry of Education and Research [03EW0015A/B]

向作者/读者索取更多资源

This article reports a new method of growing hierarchical nanostructures on nickel foam, and successfully doped iron element for oxidation reactions and oxygen evolution reaction. The results show that iron doping is more suitable for oxidation reactions, which can generate higher current density and Faradaic efficiency. In the oxygen evolution reaction, the iron-doped nickel foam electrode can achieve the current density required by industry and maintain stable performance. This article reveals the effects of iron doping and its impact on the reaction mechanism.
The oxygen evolution reaction (OER) and the value-added oxidation of renewable organic substrates are critical to supply electrons and protons for the synthesis of sustainable fuels. To meet industrial requirements, new methods for a simple, fast, environmental-friendly and cheap synthesis of robust, self-supported and high surface area electrodes are required. Herein, a novel in-liquid plasma (plasma electrolysis) approach for the growth of hierarchical nanostructures on nickel foam is reported on. Under morphology retention, iron can be doped into this high surface area electrode. For the oxidation of 5-(hydroxymethyl)furfural and benzyl alcohol, the iron-free, plasma-treated electrode is more suitable reaching current densities up to 800 mA cm(-)(2) with Faradaic efficiencies above 95%. For the OER, the iron-doped nickel foam electrode reaches the industrially relevant current density of 500 mA cm(-)(2) at 1.473 +/- 0.013 V-RHE (60 degrees C) and shows no activity decrease over 140 h. The different effects of iron doping are rationalized using methanol probing and in situ Raman spectroscopy. Furthermore, the intrinsic activity is separated from the number of active sites, and, for the organic oxidation reactions, diffusion limitations are revealed. The authors anticipate that the plasma modified nickel foam will be suitable for various (electro)catalytic processes.

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