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主族元素通过d-p轨道杂化增强钒基单原子催化剂的电化学氮还原反应

Main-Group Elements Enhance Electrochemical Nitrogen Reduction Reaction of Vanadium-Based Single Atom Catalysts Through d-p Orbital Hybridization.

作者信息

Wang Haoyu, Hu Riming, Zhu Ruochen, Xue Liang, Yang Shuaijun, Nie Yong, Yu Jiayuan, Jiang Xuchuan

机构信息

School of Institute for Smart Materials & Engineering, University of Jinan, Jinan, 250022, China.

School of Chemistry and Chemical Engineering, Institute for Advanced Interdisciplinary Research (iAIR), University of Jinan, Jinan, 250022, China.

出版信息

ChemSusChem. 2025 Jan 14;18(2):e202400808. doi: 10.1002/cssc.202400808. Epub 2024 Oct 22.

Abstract

Developing active sites with flexibility and diversity is crucial for single atom catalysts (SACs) towards sustainable nitrogen fixation at ambient conditions. Herein, the effects of doping main group metal elements (MGM) on the stability, catalytic activity, and selectivity of vanadium-based SACs is systematically investigated based on density functional theory calculations. It is found that the catalytic activity of V site can be significantly enhanced by the synergistic effect between MGM and vanadium atoms. More importantly, a volcano curve between the catalytic activity and the adsorption free energy of NNH* can be established, in which V-Pb dimer embedded on N-coordinated graphene (VPb-NG) exhibits optimal NRR activity due to its location at the top of volcano. Further analysis of electronic structures reveals that the unoccupancy ratio (e/tg) of V site is dramatically increased by the strong d-p orbital hybridization between V and Pb atoms, subsequently, N is activated to a larger extent. These interesting findings may provide a new path for designing active sites in SACs with excellent performance.

摘要

开发具有灵活性和多样性的活性位点对于单原子催化剂(SACs)在环境条件下实现可持续固氮至关重要。在此,基于密度泛函理论计算,系统研究了掺杂主族金属元素(MGM)对钒基SACs稳定性、催化活性和选择性的影响。研究发现,MGM与钒原子之间的协同效应可显著提高V位点的催化活性。更重要的是,可以建立催化活性与NNH*吸附自由能之间的火山曲线,其中嵌入N配位石墨烯(VPb-NG)的V-Pb二聚体因其位于火山顶部而表现出最佳的NRR活性。对电子结构的进一步分析表明,V和Pb原子之间强烈的d-p轨道杂化显著提高了V位点的未占据比率(e/tg),进而更大程度地激活了N。这些有趣的发现可能为设计具有优异性能的SACs活性位点提供一条新途径。

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