Dong Shizhi, Li Yanshuai, Hu Xudong, Sun Shiyin, Yan Bing, Hu Hongyu, Zhang Xing, Wang Zeliang, Guo Lin
College of Materials Science and Engineering, Liaoning Technical University, Fuxin, 123000, People's Republic of China.
School of Chemistry and Environment, Beihang University, Beijing, 100191, People's Republic of China.
Nanotechnology. 2022 Apr 12;33(27). doi: 10.1088/1361-6528/ac61cc.
The stability of functional carriers single-atom catalysts can be effectively guaranteed by using stable mineral materials to support low dimensional catalytic materials. In this paper, the theoretical calculation of electrochemical hydrogen evolution reaction (HER) of the composite functional single-atom catalysts supported by single-atom Ni was carried out using first-principles method. And the original structure of MoSamorphous structure and S-vacancy structure are studied. Through the analysis and discussion of electronic properties, adsorption energy and active sites, it is found that Ni@Amorphous MoS-FeS has excellent effect of hydrogen evolution in acidic environment, Δis 0.312 eV, and the other two structures supporting Ni single-atom also have excellent HER properties in a wide range of pH. This design broadens the research idea of single-atom catalysts carriers and provides a new direction for the research and development of electrocatalytic materials.
通过使用稳定的矿物材料负载低维催化材料,可以有效保证功能载体单原子催化剂的稳定性。本文采用第一性原理方法对单原子Ni负载的复合功能单原子催化剂的电化学析氢反应(HER)进行了理论计算。并研究了Mo非晶结构和S空位结构的原始结构。通过对电子性质、吸附能和活性位点的分析与讨论,发现Ni@非晶MoS-FeS在酸性环境中具有优异的析氢效果,Δ为0.312 eV,另外两种负载Ni单原子的结构在较宽的pH范围内也具有优异的HER性能。该设计拓宽了单原子催化剂载体的研究思路,为电催化材料的研发提供了新方向。