Gao Zheng-Yang, Yang Wei-Jie, Ding Xun-Lei, Lv Gang, Yan Wei-Ping
School of Energy and Power Engineering, North China Electric Power University, Baoding 071003, China.
Phys Chem Chem Phys. 2018 Mar 7;20(10):7333-7341. doi: 10.1039/c7cp08301g.
The adsorption and catalytic activation of O on single atom iron catalysts with graphene-based substrates were investigated systematically by density functional theory calculation. It is found that the support effects of graphene-based substrates have a significant influence on the stability of the single atom catalysts, the adsorption configuration, the electron transfer mechanism, the adsorption energy and the energy barrier. The differences in the stable adsorption configuration of O on single atom iron catalysts with different graphene-based substrates can be well understood by the symmetrical matching principle based on frontier molecular orbital analysis. There are two different mechanisms of electron transfer, in which the Fe atom acts as the electron donor in single vacancy graphene-based substrates while the Fe atom mainly acts as the bridge for electron transfer in double vacancy graphene-based substrates. The Fermi softness and work function are good descriptors of the adsorption energy and they can well reveal the relationship between electronic structure and adsorption energy. This single atom iron catalyst with single vacancy graphene modified by three nitrogen atoms is a promising non-noble metal single atom catalyst in the adsorption and catalytic oxidation of O. Furthermore, the findings can lay the foundation for the further study of graphene-based support effects and provide a guideline for the development and design of new non-noble-metal single atom catalysts.
通过密度泛函理论计算系统研究了氧在具有石墨烯基载体的单原子铁催化剂上的吸附和催化活化。研究发现,石墨烯基载体的载体效应显著影响单原子催化剂的稳定性、吸附构型、电子转移机制、吸附能和能垒。基于前线分子轨道分析的对称匹配原理可以很好地理解氧在具有不同石墨烯基载体的单原子铁催化剂上稳定吸附构型的差异。存在两种不同的电子转移机制,其中在单空位石墨烯基载体中Fe原子作为电子供体,而在双空位石墨烯基载体中Fe原子主要作为电子转移的桥梁。费米柔软度和功函数是吸附能的良好描述符,它们能很好地揭示电子结构与吸附能之间的关系。这种由三个氮原子修饰的单空位石墨烯单原子铁催化剂是一种在氧的吸附和催化氧化方面很有前景的非贵金属单原子催化剂。此外,这些发现可为进一步研究石墨烯基载体效应奠定基础,并为新型非贵金属单原子催化剂的开发和设计提供指导。