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解析超薄非晶态钴铁氢氧化物纳米片上活性Co(IV)-O位点的动态重构以实现高效析氧

Unraveling the Dynamic Reconstruction of Active Co(IV)-O Sites on Ultrathin Amorphous Cobalt-Iron Hydroxide Nanosheets for Efficient Oxygen-Evolving.

作者信息

Wang Ying, Zhuang Yuntang, Yang Guihua, Dong Chaoqun, He Ming

机构信息

State Key Laboratory of Biobased Material and Green Papermaking, Qilu University of Technology (Shandong Academy of Sciences), Jinan, Shandong, 250353, P. R. China.

Electrical Engineering Division, Department of Engineering, University of Cambridge, Cambridge, CB3 0FA, UK.

出版信息

Small. 2024 Nov;20(47):e2404205. doi: 10.1002/smll.202404205. Epub 2024 Aug 19.

Abstract

Highly-efficient and cost-effective electrocatalysts toward the oxygen evolution reaction (OER) are crucial for advancing sustainable energy technologies. Herein, a novel approach leveraging corrosion engineering is presented to facilitate the in situ growth of amorphous cobalt-iron hydroxides on nickel-iron foam (CoFe(OH)-m/NFF) within a NaCl-CoCl aqueous solution. By adjusting the concentration of the solution, the compositions can tailored and morphologies of these hydroxides to optimize the OER electrocatalytic performance. Specifically, the CoFe(OH)-500/NFF electrode manifests as distinctive 3D flower-like clusters composed of remarkably thin nanosheets, measuring a mere 1 nm in thickness. By virtue of the amorphous and ultrathin nanosheet structure, the CoFe(OH)-500/NFF electrode exhibits superior OER activity, characterized by notably low overpotentials (η, 274 mV) and an exceptionally small Tafel slope of 40.54 mV dec. Moreover, the electrode's performance remains robust, maintaining low overpotentials for 168 h at 100 mA cm. In situ Raman spectroscopy indicates that the hydroxides experience surface structural reconstruction and transform into high-valent CoFeO with active Co(IV)-O sites during the OER. Theoretical calculations underscore the critical role of the NiFe substrate in enhancing the electrode's OER activity by improving electrical conductivity and modifying the adsorption energy of reaction intermediates, thereby reducing the energy barrier for the reaction.

摘要

高效且经济高效的析氧反应(OER)电催化剂对于推动可持续能源技术至关重要。在此,提出了一种利用腐蚀工程的新方法,以促进在NaCl-CoCl水溶液中于泡沫镍铁上原位生长非晶态钴铁氢氧化物(CoFe(OH)-m/NFF)。通过调节溶液浓度,可以调整这些氢氧化物的组成和形态,以优化OER电催化性能。具体而言,CoFe(OH)-500/NFF电极表现为由非常薄的纳米片组成的独特三维花状簇,厚度仅为1纳米。凭借非晶态和超薄纳米片结构,CoFe(OH)-500/NFF电极表现出优异的OER活性,其特征在于过电位极低(η,274 mV),塔菲尔斜率异常小,为40.54 mV dec。此外,该电极的性能保持稳定,在100 mA cm下168小时内保持低过电位。原位拉曼光谱表明,在OER过程中,氢氧化物经历表面结构重构并转变为具有活性Co(IV)-O位点的高价CoFeO。理论计算强调了NiFe基底在通过提高电导率和改变反应中间体的吸附能来增强电极OER活性方面的关键作用,从而降低了反应的能垒。

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