| Literature DB >> 36271088 |
Fucong Lyu1,2, Shanshan Zeng3, Zhe Jia2,4, Fei-Xiang Ma1,2, Ligang Sun5,6, Lizi Cheng1,2, Jie Pan3, Yan Bao1,2, Zhengyi Mao1,7, Yu Bu1,2, Yang Yang Li8, Jian Lu9,10,11,12.
Abstract
Hydrogen energy is critical for achieving carbon neutrality. Heterostructured materials with single metal-atom dispersion are desirable for hydrogen production. However, it remains a great challenge to achieve large-scale fabrication of single atom-anchored heterostructured catalysts with high stability, low cost, and convenience. Here, we report single iron (Fe) atom-dispersed heterostructured Mo-based nanosheets developed from a mineral hydrogel. These rationally designed nanosheets exhibit excellent hydrogen evolution reaction (HER) activity and reliability in alkaline condition, manifesting an overpotential of 38.5 mV at 10 mA cm-2, and superior stability without performance deterioration over 600 h at current density up to 200 mA cm-2, superior to most previously reported non-noble-metal electrocatalysts. The experimental and density functional theory results reveal that the O-coordinated single Fe atom-dispersed heterostructures greatly facilitated H2O adsorption and enabled effective adsorbed hydrogen (H*) adsorption/desorption. The green, scalable production of single-atom-dispersed heterostructured HER electrocatalysts reported here is of great significance in promoting their large-scale implementation.Entities:
Year: 2022 PMID: 36271088 DOI: 10.1038/s41467-022-33725-8
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 17.694