析氧
双功能
电催化剂
电解水
分解水
纳米技术
催化作用
电化学
电解
制氢
贵金属
材料科学
电极
金属有机骨架
多孔性
氢
化学反应工程
可扩展性
化学工程
化学
表面工程
作者
Yaoqi Wei,Ziwei Lu,Fengyun Zhang,Ying Chen,Kuangcheng Zhang,Wenlan Qiu,Huanhuan Zhang,Shujia Wu,Xiangfei Liang
标识
DOI:10.1021/acs.jpcc.5c07729
摘要
The efficiency of electrochemical water splitting is predominantly governed by two central processes: the hydrogen evolution reaction (HER) and the oxygen evolution reaction (OER). While noble metal catalysts like Pt/C show exceptional HER performance, their high-cost limits widespread use. The exceptionally high surface areas and tunable porosity of metal–organic frameworks (MOFs) render them highly promising for electrocatalytic applications. However, challenges in scalable synthesis and stability remain between research and industrial application. Designing efficient non-noble metal-based alternatives is crucial. Herein, we design a molecularly engineered 2D MOF system constructed from hierarchical copper–organic coordination networks. The CuBTC framework was employed as a bifunctional electrode for overall water splitting. At a current density of 10 mA cm–2, the cell voltage required was 1.75 V, demonstrating promising electrocatalytic performance and stability. The overpotentials for the oxygen evolution reaction (OER) and hydrogen evolution reaction (HER) were measured as 268 and 165 mV, respectively. This work offers an innovative strategy for designing MOF-based electrocatalysts to advance water electrolysis efficiency.
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