| Literature DB >> 33856757 |
Mengke Kang1, Changqing Lin2,3, Huan Yang4, Yabin Guo4, Lixuan Liu5, Tianyu Xue1, Youwen Liu4, Yongji Gong5, Zhisheng Zhao1, Tianyou Zhai4, Kun Zhai1, Anmin Nie1, Yingchun Cheng2,3, Zhongyuan Liu1.
Abstract
The development of stable and low-cost catalysts with high reactivity to replace Pt-based ones is the central focus but challenging for hydrogen evolution reaction (HER). The incorporation of single atoms into two-dimensional (2D) supports has been demonstrated as an effective strategy because of the highly active single atomic sites and extremely large surface area of two-dimensional materials. However, the doping of single atoms is normally performed on the surface suffering from low stability, especially in acidic media. Moreover, it is experimentally challenging to produce monolayered 2D materials with atomic doping. Here, we propose a strategy to incorporate single foreign Fe atoms to substitute W atoms in sandwiched two-dimensional WS2. Because of the charge transfer between the doped Fe atom and its neighboring S atoms on the surface, the proximate S atoms become active for HER. Our theoretical prediction is later verified experimentally, showing an enhanced catalytic reactivity of Fe-doped WS2 in HER with the Volmer-Heyrovsky mechanism involved. We refer to this strategy as proximity catalysis, which is expected to be extendable to more sandwiched two-dimensional materials as substrates and transition metals as dopants.Entities:
Keywords: Single-atom doping; chemical vapor deposition; hydrogen reaction evolution; proximity effect; two-dimensional materials
Year: 2021 PMID: 33856757 DOI: 10.1021/acsami.1c00139
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229