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DFT Study on Effect of Metal Type and Coordination Environment on CO 2 ECR to C 1 Products over M-N-C Catalysts.

Yu MengLinbin YingYani TaoLiang MaBaoning LiYan XingXiaoyan LiuYajun MaXiao-Dong Wen
Published in: Langmuir : the ACS journal of surfaces and colloids (2024)
Electrocatalytic reduction (ECR) of CO 2 to chemical products is an important carbon emission reduction method. This work uses DFT to study the stability of N-doped graphene-supported four metal single-atom catalysts (M-N-C) and the effects of the coordination environment and metal centers on the selectivity of CO 2 ECR to C 1 products. The results show that Fe, Co, Ni, and Cu have good stability. The coordination environment has a significant modulating effect on product selectivity, and the change of the number of ligand nitrogen atoms will affect the size of the potential-limiting step of each product. When the number of nitrogen ligands is the same, the different metal centers of the M-N-C catalyst have a significant effect on the selectivity of different products. In addition, the introduction of nitrogen atom ligands can adjust the electronic structure of the graphene-supported metal center, increase the d-band center of most metals, and improve the reaction activity.
Keyphrases
  • metal organic framework
  • highly efficient
  • room temperature
  • molecular docking
  • quantum dots
  • density functional theory
  • signaling pathway
  • electron transfer
  • climate change