塔菲尔方程
过电位
析氧
纳米材料基催化剂
分解水
材料科学
电化学
电解水
过渡金属
催化作用
化学工程
电解
电子转移
氧化还原
无机化学
金属
化学
电极
物理化学
冶金
光催化
工程类
生物化学
电解质
作者
Feifei Chen,Yong Zhang,Chang Q. Sun,Yangfan Song,Guozhu Gao,Meiqin Xu,Hong Dong,Feng Lu,Weihua Wang,Hui Liu,Yahui Cheng
标识
DOI:10.1021/acsanm.4c06077
摘要
Finding effective electrocatalysts from earth-abundant materials for water splitting is crucial for advancing the future hydrogen economy. Fe-based oxides have been identified as highly efficient transition-metal electrocatalysts for the oxygen evolution reaction (OER). However, their performance is hindered by inappropriate intermediate binding, low intrinsic conductivity, and poor stability, preventing them from competing with precious metal catalysts. This study presents an effective electrochemical reduction strategy for incorporating oxygen vacancies in situ into Fe3O4/iron foam (IF) nanocatalysts by applying a constant negative voltage. The results indicate that the reduced Fe3O4/IF (referred to as Re-Fe3O4/IF) exhibits enhanced OER performance due to the increased oxygen vacancy, substantial electron transfer rate, and greater electrochemically active surface area. Subsequently, this strategy was applied to Ni element-doped iron oxides with electron redistribution, achieving excellent OER performance. The electrochemically optimized Re-Ni0.8Fe2.2O4–x/IF nanocatalyst demonstrates a low overpotential of 239 mV at 100 mA cm–2, a small Tafel slope of 41.78 mV dec–1, and an exceptional long-term electrolysis stability of 300 h under alkaline conditions. This study presents a simple and promising approach to induce oxygen vacancies into transition-metal oxides (TMOs)-based OER nanocatalysts for efficient water-splitting systems.
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