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Rare earth engineering for electrocatalytic nitrate reduction: mechanisms, materials, design principles, and batteries
发布时间:2026-09-04 点击次数:

DOI码:10.1016/j.ccr.2026.218352

发表刊物:Coordination Chemistry Reviews

摘要:Electrocatalytic nitrate reduction to ammonia (NO3RR) is a promising strategy for sustainable ammonia (NH3) production and nitrate (NO3−) remediation. However, major challenges remain in achieving high efficiency and selectivity. This review provides a focused overview of the role of rare earth (RE) elements in NO3RR, highlighting their large ionic radii, unfilled 4f orbitals, strong oxygen affinity, and diverse coordination properties. These unique properties enhance NO3− adsorption, stabilise intermediates such as nitrite (NO2−) and hydroxylamine (NH2OH), and accelerate proton-coupled electron transfer (PECT), making RE-based catalysts highly effective for NO3RR. We systematically classify RE-based catalysts into three categories: RE-based oxide catalysts, RE-doped catalysts, and RE single-atom catalysts. RE elements tune the electronic structure of catalysts, shift the d-band centre, and lower activation barriers, improving NH3 selectivity and turnover rates. Furthermore, RE elements suppress unwanted side reactions, such as hydrogen evolution and Ntriple bondN coupling, enhancing stability and scalability. We also identify remaining challenges, such as mechanistic ambiguities and catalyst durability, and propose future research directions, such as exploring less-studied RE dopants, coupling with external stimuli (e.g., magnetic fields), and integrating NO3RR with renewable-energy-driven processes. This review provides new insights into RE-engineered electrocatalysts, advancing sustainable NH3 production and green chemistry innovation.

论文类型:期刊论文

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发表时间:2026-07-31

发布期刊链接:https://www.sciencedirect.com/science/article/abs/pii/S0010854526007885