A Two-Dimensional Mocofe Trimetallic Metal-Organic Frameworks Nanosheets for Highly Efficient Electrocatalytic Oxygen Evolution

析氧 金属有机骨架 氧气 金属 电催化剂 材料科学 化学工程 纳米技术 氧还原 化学 冶金 电化学 电极 物理化学 工程类 有机化学 吸附
作者
Renzhi Qi,Zhaoping Zhong,Fuqiang Chen,Xiang Zheng,Shuang Li,Yuxuan Yang,Qihang Ye
标识
DOI:10.2139/ssrn.4462604
摘要

The serious concern about energy shortage and environmental pollution requires the development of next-generation energy storage and conversion equipment. People have made tremendous efforts in developing alternative electrode materials (like metal oxides, hydroxides, or their compound materials) for water electrolysis. Among them, polymetallic organic framework nanostructures have attracted much attention. Metal-organic frameworks (MOFs) have undergone a topological transformation and surface reconstruction, and the trimetallic coupling effect could significantly improve the performance of oxygen evolution reaction (OER), providing another way to obtain effective catalysts. In this study, a highly active two-dimensional (2D) trimetallic MOFs-based nanosheets (MoCoFe-MOFs@NC) was prepared as an electrocatalyst for OER. Given the synergistic effect between 2D nanosheet structure and polymetallic electronic modification, it provides highly dispersed and accessible active sites for electrochemical reactions. At the same time, nitrogen doping and the formation of metal sulfide hybrid products on the carbon substrate improve the conductivity, showing the potential of bifunctional electrocatalysts. In alkaline electrolytes, the electrocatalyst reveals an initial potential of 1.45 V and only requires an overpotential of 285 mV to reach a current density of 10 mA cm−2 and has good endurance. It still exhibits excellent activity after continuous operation for 20,000 seconds. These findings not only contribute theoretical support to the correlation between polymetallic coordination structure evolution and OER catalytic activity in compound materials but also offer prospects for the development of hybrid electrocatalysts.
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