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用于工业规模海水制氢的工程化镍铁氮化物电催化剂

Engineered Nickel-Iron Nitride Electrocatalyst for Industrial-Scale Seawater Hydrogen Production.

作者信息

Hu Huashuai, Wang Xunlu, Zhang Zhaorui, Liu Jiahao, Yan Xiaohui, Wang Xiaoli, Wang Jiacheng, Attfield J Paul, Yang Minghui

机构信息

School of Environmental Science and Technology, Dalian University of Technology, Dalian, 116024, China.

Zhejiang Key Laboratory for Island Green Energy and New Materials, Institute of Electrochemistry, School of Materials Science and Engineering, Taizhou University, Taizhou, Zhejiang, 318000, China.

出版信息

Adv Mater. 2025 Jan;37(4):e2415421. doi: 10.1002/adma.202415421. Epub 2024 Nov 25.

Abstract

Seawater electrolysis under alkaline conditions is a crucial technology for sustainable hydrogen production. However, achieving the long-term stability of the electrocatalyst remains a significant challenge. In this study, it is demonstrated that surface reconstruction of a transition metal nitride (TMN) can be used to develop a highly stable oxygen evolution reaction (OER) electrocatalyst. Rapid introduction of phosphate groups (PO ) accelerates the in situ surface reconstruction of NiFeN, generating a catalyst, with a conductive nitride core and Cl-resistant hydroxide shell that demonstrates outstanding performance, maintaining stability for over 2500 h at 1 A cm current density in alkaline seawater. In situ characterization and density functional theory (DFT) calculations reveal the dynamic evolution of active sites, providing insights into the mechanisms driving long-term stability. This work not only introduces an efficient approach to TMN-based catalyst design but also advances the development of durable electrocatalysts for industrial-scale seawater hydrogen production.

摘要

碱性条件下的海水电解是可持续制氢的关键技术。然而,实现电催化剂的长期稳定性仍然是一项重大挑战。在本研究中,结果表明过渡金属氮化物(TMN)的表面重构可用于开发高度稳定的析氧反应(OER)电催化剂。快速引入磷酸根(PO)可加速NiFeN的原位表面重构,生成一种具有导电氮化物核心和耐氯氢氧化物壳层的催化剂,该催化剂表现出优异的性能,在碱性海水中1 A cm电流密度下可保持稳定性超过2500小时。原位表征和密度泛函理论(DFT)计算揭示了活性位点的动态演变,为驱动长期稳定性的机制提供了见解。这项工作不仅介绍了一种基于TMN的催化剂设计的有效方法,还推动了用于工业规模海水制氢的耐用性电催化剂的发展。

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