4.7 Article

Hydrogen evolution reaction on in-plane platinum and palladium dichalcogenides via single-atom doping

期刊

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
卷 46, 期 35, 页码 18294-18304

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2021.02.206

关键词

Density functional theory; Platinum and palladium dichalcogenides; Single-atom doping; Hydrogen evolution reaction

资金

  1. National Natural Science Foundation of China, China [11904370]
  2. Fund of State Key Laboratory of IPOC (BUPT) , P. R. China, China [IPOC2019ZZ04]
  3. Open Foundation of Key Laboratory of Laser Device Technology, China North Industries Group Corporation Limited, China [KLLDT202001]
  4. China Postdoctoral Science Foundation, China [2019M660563]

向作者/读者索取更多资源

This study investigates the effects of single-atom doping and vacancies on Pt/Pd-based dichalcogenides through first-principles calculations, revealing that most defective structures are thermodynamically stable and that hydrogen evolution performance is significantly improved by single-atom doping and vacancies, especially in Zn-doped and Te vacancy PtTe2.
Searching for the catalysts with excellent catalytic activity and high chemical stability is the key to achieve large-scale production of hydrogen (H-2) through hydrogen evolution reaction (HER). Two-dimensional (2D) platinum and palladium dichalcogenides with extraordinary electrical properties have emerged as the potential candidate for HER catalysts. Here, chemical stability, HER electrocatalytic activity, and the origin of improved HER performance of Pt/Pd-based dichalcogenides with single-atom doping (B, C, N, P, Au, Ag, Cu, Co, Fe, Ni, Zn) and vacancies are explored by first-principles calculations. The calculated defect formation energy reveals that most defective structures are thermodynamically stable. Hydrogen evolution performance on basal plane is obviously improved by single-atoms doping and vacancies. Particularly, Zn-doped and Te vacancy PtTe2 have a DGH value close to zero. Moreover, defect engineering displays a different performance on HER catalytic activity in sulfur group elements, in order of S < Te < Se in Pd-based chalcogenides, and S < Se < Te in Pt-based chalcogenides. The origin of improved hydrogen evolution performance is revealed by electronic structure and charge transfer. Our findings of the highly activating defective systems provide a theoretical basis for HER applications of platinum and palladium dichalcogenides. (C) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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