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一种具有梯度金属网络结构的高熵羟基氧化物用于高效且稳定的碱性全水解。

A High-Entropy Oxyhydroxide with a Graded Metal Network Structure for Efficient and Robust Alkaline Overall Water Splitting.

作者信息

Zhang Chen-Xu, Yin Di, Zhang Yu-Xuan, Sun Yu-Xiang, Zhao Xiao-Jin, Liao Wu-Gang, Ho Johnny C

机构信息

State Key Laboratory of Radio Frequency Heterogeneous Integration (Shenzhen University), College of Electronics and Information Engineering, Shenzhen, 518060, China.

Department of Materials Science and Engineering, City University of Hong Kong, Hong Kong, SAR, 999077, P. R. China.

出版信息

Adv Sci (Weinh). 2024 Oct;11(39):e2406008. doi: 10.1002/advs.202406008. Epub 2024 Aug 13.

Abstract

Designing high-entropy oxyhydroxides (HEOs) electrocatalysts with controlled nanostructures is vital for efficient and stable water-splitting electrocatalysts. Herein, a novel HEOs material (FeCoNiWCuOOH@Cu) containing five non-noble metal elements derived by electrodeposition on a 3D double-continuous porous Cu support is created. This support, prepared via the liquid metal dealloying method, offers a high specific surface area and rapid mass/charge transfer channels. The resulting high-entropy FeCoNiWCuOOH nanosheets provide a dense distribution of active sites. The heterostructure between Cu skeletons and FeCoNiWCuOOH nanosheets enhances mass transfer, electronic structure coupling, and overall structural stability, leading to excellent activities in the oxygen evolution reaction (OER), hydrogen evolution reaction (HER), and water splitting reaction. At 10 mA cm, the overpotentials for OER, HER, and water splitting in 1.0 m KOH solution are 200, 18, and 1.40 V, respectively, outperforming most current electrocatalysts. The catalytic performance remains stable even after operating at 300 mA cm for 100, 100, and over 1000 h, correspondingly. This material has potential applications in integrated hydrogen energy systems. More importantly, density functional theory (DFT) calculations demonstrate the synergy of the five elements in enhancing water-splitting activity. This work offers valuable insights for designing industrial water electrolysis systems.

摘要

设计具有可控纳米结构的高熵羟基氧化物(HEOs)电催化剂对于高效稳定的水分解电催化剂至关重要。在此,通过电沉积在三维双连续多孔铜载体上制备了一种新型的包含五种非贵金属元素的HEOs材料(FeCoNiWCuOOH@Cu)。这种通过液态金属脱合金法制备的载体具有高比表面积和快速的质量/电荷转移通道。所得的高熵FeCoNiWCuOOH纳米片提供了活性位点的密集分布。铜骨架与FeCoNiWCuOOH纳米片之间的异质结构增强了传质、电子结构耦合和整体结构稳定性,从而在析氧反应(OER)、析氢反应(HER)和水分解反应中表现出优异的活性。在1.0 m KOH溶液中,当电流密度为10 mA cm时,OER、HER和水分解的过电位分别为200、18和1.40 V,优于目前大多数电催化剂。即使在300 mA cm下分别运行100、100和超过1000 h后,催化性能仍保持稳定。这种材料在集成氢能系统中具有潜在应用。更重要的是,密度泛函理论(DFT)计算证明了这五种元素在增强水分解活性方面的协同作用。这项工作为设计工业水电解系统提供了有价值的见解。

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