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Enhanced Activities in Alkaline Hydrogen and Oxygen Evolution Reactions on MoS 2 Electrocatalysts by In-Plane Sulfur Defects Coupled with Transition Metal Doping.

Yuanhang MaDifei LengXuming ZhangJijiang FuChaoran PiYang ZhengBiao GaoXiangguo LiNeng LiPaul K ChuYongsong LuoKaifu Huo
Published in: Small (Weinheim an der Bergstrasse, Germany) (2022)
2D transition metal disulfides (TMDs) are promising and cost-effective alternatives to noble-metal-based catalysts for hydrogen production. Activation of the inert basal plane of TMDs is crucial to improving the catalytic efficiency. Herein, introduction of in-plane sulfur vacancies (S v ) and 3d transition metal dopants in concert activates the basal planes of MoS 2 (M-S v -MoS 2 ) to achieve high activities in the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). Acetate introducing mild wet chemical etching removes surface S atoms facilitating subsequent cation exchange between the exposed Mo atoms and targeted metal ions in solution. Density-functional theory calculation demonstrates that the exposed 3d transition metal dopants in MoS 2 basal planes serve as multifunctional active centers, which not only reduce ΔG H* but also accelerate water oxidation. As a result, the optimal Ni-S v -MoS 2 and Co-S v -MoS 2 electrocatalysts show excellent stability and alkaline HER and OER characteristics such as low overpotentials of 101 and 190 mV at 10 mA cm -2 , respectively. The results reveal a strategy to activate the inert MoS 2 basal planes by defect and doping co-engineering and the technique can be extended to other types of TMDs for high-efficiency electrocatalysis beyond water splitting.
Keyphrases
  • transition metal
  • density functional theory
  • high efficiency
  • quantum dots
  • molecular dynamics
  • drug delivery
  • genome wide
  • single cell
  • hydrogen peroxide
  • visible light
  • electron transfer
  • room temperature