电催化剂
分解水
电解
催化作用
电化学
化学工程
等离子体
密度泛函理论
吸附
材料科学
热液循环
电解水
化学
尿素
无机化学
物理化学
电极
计算化学
工程类
物理
电解质
光催化
有机化学
量子力学
生物化学
作者
Yanqiu Xu,Ran Wang,Chao Feng,Xiao Zhang,Nana Wang,Qiang Zhang,Meng Xie,Yanchao Xu,Yang Jiao,Jianrong Chen
标识
DOI:10.1016/j.jcis.2023.07.034
摘要
The design of high-performance electrocatalysts for water splitting and urea oxidation reactions requires effective regulation of their electronic structure and electrochemical surface area (ECSA). In this study, we developed an in-situ grown Fe-MOF electrocatalyst on Fe foam (FF) by using a combination of easy hydrothermal synthesis and advanced plasma technology (Fe-MOF/FF). By varying the plasma treatment time, we could tailor the surface morphology and electronic structure of the Fe-MOF/FF microrods. Meanwhile, density functional theory (DFT) calculations investigated the catalytic mechanism, revealing that plasma-treated Fe-MOF/FF has a lower energy barrier for water splitting and H* adsorption during the HER process, and higher catalytic activity for UOR. Additionally, the electronic density of optimized Fe-MOF/FF is significantly expanded near the Fermi level. Remarkably, our catalysts achieved exceptional activity in both water splitting and urea electrolysis, requiring only 1.54 V and 1.472 V, respectively, at 10 mA cm-2, with excellent stability. Our findings highlight the potential of plasma technology as a powerful tool for developing multifunctional electrocatalysts for clean energy and industrial wastewater treatment applications.
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