| Literature DB >> 31584788 |
Ming Peng1, Yijin Qiao1, Min Luo2, Mengjia Wang1, Shufen Chu3, Yang Zhao1, Pan Liu3, Ji Liu1, Yongwen Tan1.
Abstract
Developing highly efficient non-precious-metal catalysts for electrochemical reduction reaction is vital for artificial nitrogen fixation under ambient conditions. Herein, we report a bioinspired Fe3C@C composite as an efficient electrocatalyst for nitrogen reduction. The composite based on a leaf skeleton successfully replicates the natural vein structure with multichannels. The Fe3C@C core-shell structure as the real active center contributes to selective electrocatalytic synthesis of ammonia from nitrogen with Faraday efficiency of 9.15% and production rate of 8.53 μg/(h mgcat) or 12.80 μg/(h cm2) at a low potential of -0.2 V versus reversible hydrogen electrode (vs RHE), which is better than that of recently reported carbon- and iron-based materials, even comparable with that of noble-metal-based catalyst. Experiments with density functional theory calculations reveal that graphene-encapsulated Fe3C nanoparticles can improve charge transfer due to core-shell interaction, beneficial for inducing active sites for N2 adsorption and activation and thereby facilitate ammonia synthesis.Entities:
Keywords: Fe3C@C; ammonia electrosynthesis; biotemplating; charge transfer; electrochemical nitrogen reduction
Year: 2019 PMID: 31584788 DOI: 10.1021/acsami.9b14143
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229