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Deep Eutectic Solvent-Assisted Corrosion Boosting Bulk FeCoNiCrMo High-Entropy Alloys as Highly Efficient Oxygen Evolution Reaction Catalyst.
Xu, Yu-Cheng; Chen, Wei-Jia; Zhou, Jin-Feng; Hu, Chang-Bin; He, Shi-Wei; Liu, Huan; Hua, Zhong-Sheng.
Affiliation
  • Xu YC; School of Metallurgical Engineering, Anhui University of Technology, Maanshan 243002, China.
  • Chen WJ; School of Metallurgical Engineering, Anhui University of Technology, Maanshan 243002, China.
  • Zhou JF; School of Metallurgical Engineering, Anhui University of Technology, Maanshan 243002, China.
  • Hu CB; School of Metallurgical Engineering, Anhui University of Technology, Maanshan 243002, China.
  • He SW; School of Metallurgical Engineering, Anhui University of Technology, Maanshan 243002, China.
  • Liu H; Wuhu Technology and Innovation Research Institute, Wuhu 241000, China.
  • Hua ZS; Anhui International Joint Research Center for Metallurgical Process and System Science, Maanshan 243002, China.
Langmuir ; 40(28): 14291-14302, 2024 Jul 16.
Article in En | MEDLINE | ID: mdl-38950193
ABSTRACT
The key to enhancing water electrolysis efficiency lies in selecting highly efficient catalysts. Currently, high-entropy alloys (HEAs) are utilized in electrocatalysis applications owing to their diverse elemental composition, disordered elemental distribution, and the high solubility of each element, endowing them with excellent catalytic performance. The experiments were conducted using isoatomic FeNiCrMo HEA as a precursor, with a high-activity three-dimensional nanoporous structure rapidly synthesized via electrochemical one-step dealloying in a choline chloride-thiourea (ChCl-TU) deep eutectic solvent (DES). The results indicate that the dealloyed Fe20Co20Ni20Cr20Mo20 HEA mainly consists of two phases face-centered cubic and σ phases. The imbalance in the distribution of elements in these two phases leads to quite different corrosion speeds with the FCC phase being preferentially corroded. Furthermore, synergistic electron coupling between surface atoms in the three-dimensional nanoporous structure strengthens the behavior of the oxygen evolution reaction (OER). At a current density of 40 mA cm-2, the overpotential after dealloying decreased to 370 mV, demonstrating excellent stability. The technique demonstrated in this work provides a novel approach to improve the catalytic activity of OER.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Langmuir Year: 2024 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Langmuir Year: 2024 Document type: Article