| Literature DB >> 28686430 |
Yanli Chen1, Guangtao Yu2, Wei Chen2, Yipu Liu1, Guo-Dong Li1, Pinwen Zhu3, Qiang Tao3, Qiuju Li1, Jingwei Liu2, Xiaopeng Shen2, Hui Li2, Xuri Huang2, Dejun Wang4, Tewodros Asefa5, Xiaoxin Zou1.
Abstract
Developing nonprecious hydrogen evolution electrocatalysts that can work well at large current densities (e.g., at 1000 mA/cm2: a value that is relevant for practical, large-scale applications) is of great importance for realizing a viable water-splitting technology. Herein we present a combined theoretical and experimental study that leads to the identification of α-phase molybdenum diboride (α-MoB2) comprising borophene subunits as a noble metal-free, superefficient electrocatalyst for the hydrogen evolution reaction (HER). Our theoretical finding indicates, unlike the surfaces of Pt- and MoS2-based catalysts, those of α-MoB2 can maintain high catalytic activity for HER even at very high hydrogen coverage and attain a high density of efficient catalytic active sites. Experiments confirm α-MoB2 can deliver large current densities in the order of 1000 mA/cm2, and also has excellent catalytic stability during HER. The theoretical and experimental results show α-MoB2's catalytic activity, especially at large current densities, is due to its high conductivity, large density of efficient catalytic active sites and good mass transport property.Entities:
Year: 2017 PMID: 28686430 DOI: 10.1021/jacs.7b06337
Source DB: PubMed Journal: J Am Chem Soc ISSN: 0002-7863 Impact factor: 15.419