4.7 Article

V-doped, divacancy-containing β-FeOOH electrocatalyst for high performance oxygen evolution reaction

期刊

CHEMICAL ENGINEERING JOURNAL
卷 438, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2022.135515

关键词

beta-FeOOH; V-doping; Anion/cation vacancies; CV activation; Oxygen evolution reaction

资金

  1. Ministry of Science and Technology in Taiwan [MOST 110-2224-E-006-005]

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This study demonstrates for the first time that the OER activity of beta-FeOOH can be enhanced through V-doping and the generation of iron and oxygen vacancies. Various analyses and experiments show that V-doping regulates the formation of oxygen vacancies and metallic Fe in the beta-FeOOH, resulting in improved charge transfer characteristics. The V-doped, divacancy-containing beta-FeOOH exhibits excellent OER performance, outperforming benchmark catalysts and showing high current density and stability.
Improving the oxygen evolution reaction (OER) performance of Fe-based (oxy)hydroxides is vital for the development of cost-effective electrocatalysts. In this work, for the first time, we demonstrate that the OER activity of beta-FeOOH is enhanced via V-doping and the generation of both iron and oxygen vacancies. The novel V-doped, divacancy-containing beta-FeOOH is obtained in-situ through a pre-OER cyclic voltammetry activation of hydrated layered Fe5V15O39(OH)(9)center dot 9H(2)O Various analyses reveal that the vanadium dissolution in basic electrolyte accounts for the in-situ formation of V-doping and divacancy beta-FeOOH. The experiment shows that V-doping regulates the formation of oxygen vacancies, subsequently resulting in the modulation of Fe oxidation state and charge transfer characteristics. Metallic Fe in the beta-FeOOH also contributes to the enhanced charge transfer. Density functional theory calculation reveals that V-doping and iron vacancy balance the adsorption and desorption of oxygen intermediate species, giving a reduced energy barrier of the rate determining step during OER. As a result, the V-doped, divacancy-containing beta-FeOOH exhibits an excellent OER overpotential of 232 mV at 10 mA cm(-2), high current density > 450 mA cm(-2), no potential decay after 2,000 cycles, and 72 h stability, outperforming the benchmark RuO2 and the other Fe-based catalysts. A water splitting cell consisting of the beta-FeOOH anode F(V)OOH and a Pt/C cathode demonstrates an excellent cell voltage of 1.51 V at 10 mA cm(-2). This facile method to obtain metal doping and divacancy simultaneously leads to a new approach for further development of electrocatalysts.

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