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非晶态-非晶态耦合增强镍铁基催化剂的析氧反应活性和稳定性

Amorphous-Amorphous Coupling Enhancing the Oxygen Evolution Reaction Activity and Stability of the NiFe-Based Catalyst.

作者信息

Gao Hanqing, Sun Wei, Tian Xinlong, Liao Jianjun, Ma Chenglong, Hu Yuling, Du Gan, Yang Ji, Ge Chengjun

机构信息

Key Laboratory of Agro-Forestry Environmental Processes and Ecological Regulation of Hainan Province, College of Ecology and Environment, Hainan University, 58 Renmin Road, Haikou, Hainan 570228, People's Republic of China.

State Key Laboratory of Marine Resource Utilization in South China Sea, Hainan University, 58 Renmin Road, Haikou, Hainan 570228, People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2022 Apr 6;14(13):15205-15213. doi: 10.1021/acsami.1c25115. Epub 2022 Mar 28.

Abstract

Efficient and stable electrocatalytic water splitting plays a critical role in energy storage and conversion but is strongly restricted by the low activity and stability of catalysts associated with the complicated oxygen evolution reaction (OER). This work provides a strategy to fabricate an advanced NiFe-based catalyst to steadily speed up the OER based on a strong amorphous-amorphous coupling effect generated through amorphous CuS that induces the formation of amorphous NiFe layered double hydroxide (LDH) nanosheets (A-NiFe NS/CuS). The presence of the strong coupling effect not only modifies the electronic structure of catalytic sites to accelerate the reaction kinetics but also enhances the binding between the catalyst and substrate to strengthen the durability. In comparison to well-grown core-shell crystalline NiFe LDH on CuO, the as-synthesized amorphous A-NiFe NS/CuS gives a low overpotential of 240 mV to achieve 100 mA cm and shows robust stability under 100 h of operation at the same current density. Therefore, amorphous-amorphous coupling between catalyst-substrate by elaborate and rational engineering yields an opportunity to design efficient and robust NiFe-based OER catalysts.

摘要

高效且稳定的电催化水分解在能量存储和转换中起着关键作用,但与复杂的析氧反应(OER)相关的催化剂活性低和稳定性差严重限制了其发展。这项工作基于通过非晶态CuS产生的强非晶-非晶耦合效应,提供了一种制备先进的镍铁基催化剂的策略,以稳定地加速OER,该效应诱导形成非晶态镍铁层状双氢氧化物(LDH)纳米片(A-NiFe NS/CuS)。强耦合效应的存在不仅改变了催化位点的电子结构以加速反应动力学,还增强了催化剂与基底之间的结合以提高耐久性。与在CuO上生长良好的核壳晶体镍铁LDH相比,合成的非晶态A-NiFe NS/CuS实现100 mA cm时的过电位低至240 mV,并且在相同电流密度下运行100小时表现出强大的稳定性。因此,通过精心合理的工程设计实现催化剂-基底之间的非晶-非晶耦合,为设计高效且强大的镍铁基OER催化剂提供了契机。

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