Iron Molybdenum Sulfide‐Supported Ultrafine Ru Nanoclusters for Robust Sulfion Degradation‐Assisted Hydrogen Production

Author:

Wang Jiahui1,Zhou Min1,Fu Rong2,Ge Ju2,Yang Wei1,Hong Xufeng3,Sun Congli1,Liao Xiaobin1ORCID,Zhao Yan145ORCID,Wang Zhaoyang26ORCID

Affiliation:

1. State Key Laboratory of Silicate Materials for Architectures International School of Materials Science and Engineering Wuhan University of Technology Wuhan Hubei 430070 P. R. China

2. School of Chemistry and Materials Science Hubei Engineering University No. 272 Traffic Avenue Xiaogan Hubei 432000 P. R. China

3. Beijing Key Laboratory for Theory and Technology of Advanced Battery Materials, School of Materials Science and Engineering Peking University Beijing 100871 P. R. China

4. The Institute of Technological Sciences Wuhan University Wuhan Hubei 430072 P. R. China

5. College of Materials Science and Engineering Sichuan University Chengdu Sichuan 610065 P. R. China

6. Hubei Provincial Key Laboratory of Green Materials for Light Industry Hubei University of Technology Wuhan Hubei 430062 P. R. China

Abstract

AbstractElectrocatalytic hydrogen evolution and (S2−) recycling present promising strategies for cost‐effective hydrogen production and simultaneous removal of environmental pollutants. However, the advancement of this technology is hindered by the limited availability of affordable, efficient, and stable catalysts. Herein, the study synthesizes ultrafine ruthenium (Ru) nanoclusters on a substrate of iron molybdenum sulfide (FeMo‐S) nanosheets, creating a new heterointerface catalyst (FeMo‐S/Ru) for the hydrogen evolution reaction (HER) and sulfion oxidation reaction (SOR). Experimental and theoretical calculations suggest that strong electron interactions between Ru nanoclusters and FeMo‐S substrate, optimizing *H adsorption and promoting HER activity on one side while facilitating the production and adsorption of sulfur intermediates on the other side, effectively catalyzing SOR. Additionally, the assembled electrocatalytic coupling system with FeMo‐S/Ru displays an ultralow cell voltage of 0.57 V at 100 mA cm−2, achieving high Faradaic efficiencies (>96%) for H2 production, while also exhibiting remarkable durability over 1 month (838 h). This work paves the way for the development of highly efficient and durable supported catalysts, enabling energy‐saving hydrogen production and environmentally friendly sulfion recycling.

Funder

National Natural Science Foundation of China

National College Students Innovation and Entrepreneurship Training Program

Publisher

Wiley

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