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理解原子分散的FeN位点的活性位点结构并实现其氧还原反应催化活性的调控

Understanding the Active Site Structures and Achieving Catalytic Activity Tuning of Atomically Dispersed FeN Sites for Oxygen Reduction Reaction.

作者信息

Xu Jiayi, Patel Prajay, Yan Chang, Liu Cong

机构信息

Chemical Sciences and Engineering Division, Argonne National Laboratory, Lemont, IL, 60439, USA.

Chemistry Department, University of Dallas, Irving, TX, 75062, USA.

出版信息

Chemphyschem. 2025 Aug 23;26(16):e202401158. doi: 10.1002/cphc.202401158. Epub 2025 Jul 22.

Abstract

Atomically dispersed FeNC catalysts with high oxygen reduction reaction (ORR) activity have attracted great attention since the last decade. Due to comparable ORR activity and low material cost, they are promising platinum group metal (PGM)-free catalysts that can replace the commercialized Pt/C materials; furthermore, it can facilitate the efficiency of the fuel cell technologies and mitigate dependence on fossil fuels. Great advancements have been made to experimentally optimize the synthesis approach of the FeNC catalysts, enhance the ORR activity, and improve the catalyst stability. Similarly, recent theoretical studies also provide enriched understanding of the active site structures, properties, and reaction mechanisms. In this review, discussions are made upon utilizing combined experimental and computational spectroscopy to reveal the active site structures, employing mechanistic studies to investigate reaction thermodynamics and kinetics, as well as developing scaling relationships to assist the design and development of future PGM-free catalyst materials. Furthermore, recent advances in studying FeNC catalysts utilizing electrified surface models and explicit solvation models are also discussed. Not only can these aspects improve the accuracy of theoretical simulation and predictions but also deepen the understanding of the catalyst properties and reaction mechanisms under the effect of surface charges and solvent molecules.

摘要

自上一个十年以来,具有高氧还原反应(ORR)活性的原子分散型FeNC催化剂备受关注。由于具有可比的ORR活性和较低的材料成本,它们是有望替代商业化Pt/C材料的无铂族金属(PGM)催化剂;此外,它可以提高燃料电池技术的效率并减轻对化石燃料的依赖。在实验上对FeNC催化剂的合成方法进行了优化,提高了ORR活性,并改善了催化剂稳定性,取得了重大进展。同样,最近的理论研究也对活性位点结构、性质和反应机理提供了丰富的认识。在这篇综述中,讨论了利用实验光谱和计算光谱相结合来揭示活性位点结构,采用机理研究来探究反应热力学和动力学,以及建立标度关系以辅助未来无PGM催化剂材料的设计和开发。此外,还讨论了利用带电表面模型和显式溶剂化模型研究FeNC催化剂的最新进展。这些方面不仅可以提高理论模拟和预测的准确性,还可以加深对表面电荷和溶剂分子作用下催化剂性质和反应机理的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e146/12388175/ef454bd1ec40/CPHC-26-e202401158-g006.jpg

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