1. Activating MoS2 by interface engineering for efficient hydrogen evolution catalysis
- Author
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Songge Zhang, Yankun Wen, Han Zhu, Ming Zhang, Mingliang Du, and Lingling Zhang
- Subjects
Tafel equation ,Materials science ,Carbon nanofiber ,Mechanical Engineering ,Nanoparticle ,Heterojunction ,02 engineering and technology ,Overpotential ,010402 general chemistry ,021001 nanoscience & nanotechnology ,Condensed Matter Physics ,01 natural sciences ,0104 chemical sciences ,Catalysis ,Nanocrystal ,Chemical engineering ,Transition metal ,Mechanics of Materials ,General Materials Science ,0210 nano-technology - Abstract
Transition metal sulfides have been widely investigated and used as efficient catalysts for hydrogen evolution reactions (HER). However, the trade-off between catalytic activity and long-term stability represents a formidable challenge and has not been extensively addressed. Herein, we proposed a facile strategy for the design of Au-MoS2 nanoparticles with abundant edge sites and regular core-shell structure through the interface engineering. The electrospun carbon nanofibers (CNFs) served as reactors and supports to control the preparation of core-shell heterostructures. Core-shell heterostructure exhibits more excellent catalytic than single component resulting from the synergistic effects at nano-interface. The obtained Au-MoS2/CNFs catalyst yield a current density of 10 mA cm−2 at the overpotential of 92 mV and a Tafel slope of 126 mV dec−1. Particularly, the durability of catalyst is relatively stable at the 50 h. The successful synthesis of core-shell nanocrystals provides a new path for designing advanced electrocatalysts.
- Published
- 2019
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