4.6 Article

Theoretical Investigation on the Hydrogen Evolution, Oxygen Evolution, and Oxygen Reduction Reactions Performances of Two-Dimensional Metal-Organic Frameworks Fe3(C2X)12 (X = NH, O, S)

Journal

MOLECULES
Volume 27, Issue 5, Pages -

Publisher

MDPI
DOI: 10.3390/molecules27051528

Keywords

two-dimensional metal-organic framework; ligand; single-atom catalysts; hydrogen evolution reaction; oxygen evolution reaction; oxygen reduction reaction

Funding

  1. Natural Science Foundation of Henan Province [202300410100]
  2. key scientific research projects of Colleges and Universities in Henan Province [22A140017]
  3. Students' innovation and entrepreneurship training program of Henan Province [S202111329008, S202111329010]

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Three 2D Fe-MOFs with different ligands were designed and investigated as SACs for HER, OER, and ORR. The results show that tuning the NH, O, and S ligands can control the electronic structure and catalysis performance in 2D Fe-MOF monolayers. The 2D Fe-MOF nanomaterials may achieve highly-efficient HER, OER, and ORR by adjusting the ligands.
Two-dimensional metal-organic frameworks (2D MOFs) inherently consisting of metal entities and ligands are promising single-atom catalysts (SACs) for electrocatalytic chemical reactions. Three 2D Fe-MOFs with NH, O, and S ligands were designed using density functional theory calculations, and their feasibility as SACs for hydrogen evolution reaction (HER), oxygen evolution reaction (OER), and oxygen reduction reaction (ORR) was investigated. The NH, O, and S ligands can be used to control electronic structures and catalysis performance in 2D Fe-MOF monolayers by tuning charge redistribution. The results confirm the Sabatier principle, which states that an ideal catalyst should provide reasonable adsorption energies for all reaction species. The 2D Fe-MOF nanomaterials may render highly-efficient HER, OER, and ORR by tuning the ligands. Therefore, we believe that this study will serve as a guide for developing of 2D MOF-based SACs for water splitting, fuel cells, and metal-air batteries.

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