| Literature DB >> 32207969 |
Junze Chen1, Guigao Liu1, Yue-Zhou Zhu2, Min Su2, Pengfei Yin1,3, Xue-Jun Wu4, Qipeng Lu1, Chaoliang Tan1, Meiting Zhao1, Zhengqing Liu1, Weimin Yang2, Hai Li5, Gwang-Hyeon Nam1, Liping Zhang1, Zhenhua Chen6, Xiao Huang5, Petar M Radjenovic2, Wei Huang5,7,8, Zhong-Qun Tian2, Jian-Feng Li2, Hua Zhang3,9.
Abstract
Understanding the reaction mechanism for the catalytic process is essential to the rational design and synthesis of highly efficient catalysts. MoS2 has been reported to be an efficient catalyst toward the electrochemical hydrogen evolution reaction (HER), but it still lacks direct experimental evidence to reveal the mechanism for MoS2-catalyzed electrochemical HER process at the atomic level. In this work, we develop a wet-chemical synthetic method to prepare the single-layer MoS2-coated polyhedral Ag core-shell heterostructure (Ag@MoS2) with tunable sizes as efficient catalysts for the electrochemical HER. The Ag@MoS2 core-shell heterostructures are used as ideal platforms for the real-time surface-enhanced Raman spectroscopy (SERS) study owing to the strong electromagnetic field generated in the plasmonic Ag core. The in situ SERS results provide solid Raman spectroscopic evidence proving the S-H bonding formation on the MoS2 surface during the HER process, suggesting that the S atom of MoS2 is the catalytic active site for the electrochemical HER. It paves the way on the design and synthesis of heterostructures for exploring their catalytic mechanism at atomic level based on the in situ SERS measurement.Year: 2020 PMID: 32207969 DOI: 10.1021/jacs.0c01649
Source DB: PubMed Journal: J Am Chem Soc ISSN: 0002-7863 Impact factor: 15.419