Li Han, Zhao Haoyue, Yan Guilong, Huang Gongyue, Ge Can, Forsyth Maria, Howlett Patrick C, Wang Xungai, Fang Jian
JC STEM lab of Sustainable Fibers and Textiles, School of Fashion and Textiles, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong, 999077, China.
College of Textile and Clothing Engineering, Soochow University, Suzhou, JiangSu, 215123, China.
Small. 2024 Jan;20(1):e2304844. doi: 10.1002/smll.202304844. Epub 2023 Aug 31.
Fabricating highly efficient and long-life redox bifunctional electrocatalysts is vital for oxygen-related renewable energy devices. To boost the bifunctional catalytic activity of Fe-N-C single-atom catalysts, it is imperative to fine-tune the coordination microenvironment of the Fe sites to optimize the adsorption/desorption energies of intermediates during oxygen reduction/evolution reactions (ORR/OER) and simultaneously avoid the aggregation of atomically dispersed metal sites. Herein, a strategy is developed for fabricating a free-standing electrocatalyst with atomically dispersed Fe sites (≈0.89 wt.%) supported on N, F, and S ternary-doped hollow carbon nanofibers (FeN -NFS-CNF). Both experimental and theoretical findings suggest that the incorporation of ternary heteroatoms modifies the charge distribution of Fe active centers and enhances defect density, thereby optimizing the bifunctional catalytic activities. The efficient regulation isolated Fe centers come from the dual confinement of zeolitic imidazole framework-8 (ZIF-8) and polymerized ionic liquid (PIL), while the precise formation of distinct hierarchical three-dimensional porous structure maximizes the exposure of low-doping Fe active sites and enriched heteroatoms. FeN -NFS-CNF achieves remarkable electrocatalytic activity with a high ORR half-wave potential (0.90 V) and a low OER overpotential (270 mV) in alkaline electrolyte, revealing the benefit of optimizing the microenvironment of low-doping iron single atoms in directing bifunctional catalytic activity.
制备高效且长寿命的氧化还原双功能电催化剂对于与氧相关的可再生能源装置至关重要。为了提高Fe-N-C单原子催化剂的双功能催化活性,必须精细调节Fe位点的配位微环境,以优化氧还原/析出反应(ORR/OER)过程中中间体的吸附/脱附能量,同时避免原子分散的金属位点聚集。在此,开发了一种策略来制备一种独立的电催化剂,该催化剂具有负载在N、F和S三元掺杂的中空碳纳米纤维(FeN -NFS-CNF)上的原子分散的Fe位点(约0.89 wt.%)。实验和理论结果均表明,三元杂原子的引入改变了Fe活性中心的电荷分布并提高了缺陷密度,从而优化了双功能催化活性。高效调控孤立的Fe中心来自于沸石咪唑框架-8(ZIF-8)和聚合离子液体(PIL)的双重限域作用,而独特的分级三维多孔结构的精确形成则最大限度地暴露了低掺杂的Fe活性位点和富集的杂原子。FeN -NFS-CNF在碱性电解质中具有高ORR半波电位(0.90 V)和低OER过电位(270 mV),展现出显著的电催化活性,揭示了优化低掺杂铁单原子微环境对指导双功能催化活性的益处。