Boosting oxygen evolution reaction rates with mesoporous Fe-doped MoCo-phosphide nanosheets

磷化物 Boosting(机器学习) 兴奋剂 介孔材料 材料科学 化学工程 化学 光电子学 催化作用 计算机科学 冶金 有机化学 机器学习 工程类
作者
Gouda K. Helal,Zhenhang Xu,Wei Zuo,Yueying Yu,Jinyan Liu,Hongping Su,Jiang Xu,Houbin Li,Gongzhen Cheng,Pingping Zhao
出处
期刊:RSC Advances [The Royal Society of Chemistry]
卷期号:14 (15): 10182-10190 被引量:1
标识
DOI:10.1039/d4ra00146j
摘要

Transition metal-based catalysts are commonly used for water electrolysis and cost-effective hydrogen fuel production due to their exceptional electrochemical performance, particularly in enhancing the efficiency of the oxygen evolution reaction (OER) at the anode. In this study, a novel approach was developed for the preparation of catalysts with abundant active sites and defects. The MoCoFe-phosphide catalyst nanosheets were synthesized using a simple one-step hydrothermal reaction and chemical vapor deposition-based phosphorization. The resulting MoCoFe-phosphide catalyst nanosheets displayed excellent electrical conductivity and a high number of electrochemically active sites, leading to high electrocatalytic activities and efficient kinetics for the OER. The MoCoFe-phosphide catalyst nanosheets demonstrated remarkable catalytic activity, achieving a low overpotential of only 250 mV to achieve the OER at a current density of 10 mA cm-2. The catalyst also exhibited a low Tafel slope of 43.38 mV dec-1 and maintained high stability for OER in alkaline media, surpassing the performance of most other transition metal-based electrocatalysts. The outstanding OER performance can be attributed to the effects of Mo and Fe, which modulate the electronic properties and structures of CoP. The results showed a surface with abundant defects and active sites with a higher proportion of Co2+ active sites, a larger specific surface area, and improved interfacial charge transfer. X-ray photoelectron spectroscopy (XPS) analysis revealed that the catalyst's high activity originates from the presence of Mo6+/Mo4+ and Co2+/Co3+ redox couples, as well as the formation of active metal (oxy)hydroxide species on its surface.
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