| Literature DB >> 33883552 |
Xinzhe Li1,2, Yiyun Fang1,2,3, Jun Wang1,4, Hanyan Fang2, Shibo Xi5, Xiaoxu Zhao6, Danyun Xu1, Haomin Xu2, Wei Yu2, Xiao Hai2, Cheng Chen2, Chuanhao Yao2,3, Hua Bing Tao7, Alexander G R Howe6, Stephen J Pennycook6, Bin Liu8, Jiong Lu9, Chenliang Su10.
Abstract
Exposing and stabilizing undercoordinated platinum (Pt) sites and therefore optimizing their adsorption to reactive intermediates offers a desirable strategy to develop highly efficient Pt-based electrocatalysts. However, preparation of atomically controllable Pt-based model catalysts to understand the correlation between electronic structure, adsorption energy, and catalytic properties of atomic Pt sites is still challenging. Herein we report the atomically thin two-dimensional PtTe2 nanosheets with well-dispersed single atomic Te vacancies (Te-SAVs) and atomically well-defined undercoordinated Pt sites as a model electrocatalyst. A controlled thermal treatment drives the migration of the Te-SAVs to form thermodynamically stabilized, ordered Te-SAV clusters, which decreases both the density of states of undercoordinated Pt sites around the Fermi level and the interacting orbital volume of Pt sites. As a result, the binding strength of atomically defined Pt active sites to H intermediates is effectively reduced, which renders PtTe2 nanosheets highly active and stable in hydrogen evolution reaction.Entities:
Year: 2021 PMID: 33883552 DOI: 10.1038/s41467-021-22681-4
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919