Xu Hao, Li Ruopeng, Liu Huan, Sun Weiyan, Bai Jie, Lu Xiangyu, Yang Peixia
College of Chemical Engineering, Inner Mongolia University of Technology, 010051 Hohhot, China; Inner Mongolia Key Laboratory of Industrial Catalysis, 010051 Hohhot, China.
School of Chemistry and Chemical Engineering, Harbin Institute of Technology, 150001 Harbin, China.
J Colloid Interface Sci. 2024 Oct;671:643-652. doi: 10.1016/j.jcis.2024.05.197. Epub 2024 May 27.
Atomically dispersed iron-nitrogen-carbon (FesbndNsbndC) materials have been considered ideal catalysts for the oxygen reduction. Unfortunately, designing and adjusting the electronic structure of single-atom Fe sites to boost the kinetics and activity still faces grand challenges. In this work, the coordination environment engineering is developed to synthesize the Fe/NSC catalyst with the tailored N, S co-coordinated Fe atomic site (Fe-NS site). The structural characterizations and theoretical calculations demonstrate that the incorporation of sulfur can optimize the charge distribution of Fe atoms to weaken the adsorption of OH* and facilitate the desorption of OH*, thus leading to enhanced kinetics process and intrinsic activity. As a result, the S-modified Fe/NSC exhibits outstanding catalytic activity with the half-wave potentials (E) of 0.915 V and 0.797 V, as well as good stability, in alkaline and acidic electrolytes, respectively. Impressively, the excellent performance of Fe/NSC is further confirmed in Zn-air batteries (ZABs) and fuel cells, with high peak power densities (146 mW cm and 0.259 W cm).
原子分散的铁 - 氮 - 碳(Fe-N-C)材料被认为是氧还原的理想催化剂。不幸的是,设计和调整单原子铁位点的电子结构以促进动力学和活性仍然面临巨大挑战。在这项工作中,开发了配位环境工程来合成具有定制的氮、硫共配位铁原子位点(Fe-NS位点)的Fe/NSC催化剂。结构表征和理论计算表明,硫的掺入可以优化铁原子的电荷分布,减弱OH的吸附并促进OH的脱附,从而导致动力学过程和本征活性增强。结果,S修饰的Fe/NSC在碱性和酸性电解质中分别表现出出色的催化活性,半波电位(E)为0.915 V和0.797 V,以及良好的稳定性。令人印象深刻的是,Fe/NSC在锌空气电池(ZABs)和燃料电池中具有高峰值功率密度(146 mW cm²和0.259 W cm²),进一步证实了其优异性能。