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部分非晶态镍铁层状双氢氧化物可在高电流密度下实现高效析氧反应。

Partially amorphous NiFe layered double hydroxides enabling highly-efficiency oxygen evolution reaction at high current density.

作者信息

Yang Guijin, Fang Dongyang, Fu Yujun, Gao Daqiang, Cheng Chen, Li Jinyun

机构信息

Key Laboratory of Atomic and Molecular Physics & Functional Materials of Gansu Province, College of Physics and Electronic Engineering, Northwest Normal University, Lanzhou 730070, PR China.

Key Laboratory of Atomic and Molecular Physics & Functional Materials of Gansu Province, College of Physics and Electronic Engineering, Northwest Normal University, Lanzhou 730070, PR China.

出版信息

J Colloid Interface Sci. 2025 Jan 15;678(Pt C):717-725. doi: 10.1016/j.jcis.2024.09.151. Epub 2024 Sep 16.

Abstract

Layered double hydroxide (LDH) serves as an innovative catalyst for water electrolysis, showcasing outstanding performance in the oxygen evolution reaction (OER) under alkaline conditions. However, it faces challenges due to its low electrical conductivity and limited accessibility to active sites. In this work, the flexibility advantages of disordered amorphous and ordered crystals in NiFe LDH were combined to improve OER performance and maintain long-term stability. This combination induces a variety of effects, including improving the intrinsic activity, changing the OER mechanism from adsorb evolution mechanism (AEM) to lattice oxygen mechanism (LOM), and promoting the reaction kinetics of the catalyst. Moreover, the porous structure of NiFe LDH can efficiently alleviate the issue of local acidic environment induced by prolonged OER reaction, satisfying the criteria for long-term stability. Therefore, the NiFe-2.0 LDH catalyst only requires an ultralow overpotential of 189 mV at a current density of 10 mA cm with Tafel slope of 43 mV dec. More importantly, the catalyst not only displays excellent electrocatalytic activity with an overpotential of 289 mV but also represents an outstanding stability over 80 h at an ultra-high current density of 1 A cm. This study provides a promising strategy for optimizing the catalytic activity and stability of catalyst at ampere current density, which is expected to achieve commercial applications.

摘要

层状双氢氧化物(LDH)作为一种用于水电解的创新型催化剂,在碱性条件下的析氧反应(OER)中表现出优异的性能。然而,由于其低电导率和活性位点的可及性有限,它面临着挑战。在这项工作中,将无序非晶态和有序晶体在NiFe LDH中的灵活性优势相结合,以提高OER性能并保持长期稳定性。这种结合引发了多种效应,包括提高本征活性、将OER机理从吸附演化机理(AEM)转变为晶格氧机理(LOM)以及促进催化剂的反应动力学。此外,NiFe LDH的多孔结构可以有效缓解长时间OER反应引起的局部酸性环境问题,满足长期稳定性的标准。因此,NiFe-2.0 LDH催化剂在电流密度为10 mA cm且塔菲尔斜率为43 mV dec时仅需要189 mV的超低过电位。更重要的是,该催化剂不仅在过电位为289 mV时表现出优异的电催化活性,而且在1 A cm的超高电流密度下80 h以上表现出出色的稳定性。本研究为在安培电流密度下优化催化剂的催化活性和稳定性提供了一种有前景的策略,有望实现商业应用。

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