| Literature DB >> 35043532 |
Erhuan Zhang1, Lei Tao2, Jingkun An3, Jiangwei Zhang4, Lingzhe Meng5, Xiaobo Zheng1, Yu Wang6, Nan Li3, Shixuan Du2,7, Jiatao Zhang5, Dingsheng Wang1, Yadong Li1.
Abstract
The in-depth understanding of local atomic environment-property relationships of p-block metal single-atom catalysts toward the 2 e- oxygen reduction reaction (ORR) has rarely been reported. Here, guided by first-principles calculations, we develop a heteroatom-modified In-based metal-organic framework-assisted approach to accurately synthesize an optimal catalyst, in which single In atoms are anchored by combined N,S-dual first coordination and B second coordination supported by the hollow carbon rods (In SAs/NSBC). The In SAs/NSBC catalyst exhibits a high H2 O2 selectivity of above 95 % in a wide range of pH. Furthermore, the In SAs/NSBC-modified natural air diffusion electrode exhibits an unprecedented production rate of 6.49 mol peroxide gcatalyst -1 h-1 in 0.1 M KOH electrolyte and 6.71 mol peroxide gcatalyst -1 h-1 in 0.1 M PBS electrolyte. This strategy enables the design of next-generation high-performance single-atom materials, and provides practical guidance for H2 O2 electrosynthesis.Entities:
Keywords: Electrocatalysis; Hydrogen Peroxide; Indium Single-Atom Catalyst; Local Coordination Environments; Metal-Organic Frameworks
Year: 2022 PMID: 35043532 DOI: 10.1002/anie.202117347
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336