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Updated: Sep 18, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Engineering at surface-interface triggered by single sites to regulate selectivity of CO2 reduction
Dongcheng He1, Teng Li1, Shujuan Liu1
1State Key Laboratory of Low Carbon Catalysis and Carbon Dioxide Utilization, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou, China.
Abstract:
Rational catalyst design and reaction mechanism investigation guided by clarification of relationship between the active sites and elementary reaction steps at molecular level are challenging but essential in heterogeneous catalysis. Here we demonstrate the alteration of active sites on surface-interface by doping Ag-single atoms to Cu-crystal lattice of Cu/Al2O3, tuning the selectivity of CO2 reductive amination from N-methylation to N,N-dimethylation. Characterizations and DFT calculations reveal that active sites for Cu/Al2O3 are interface site of [Cu(I)-O/Cu(0)]inter and surface sites of [Cu]surf while that change to [Ag(I)-O/Cu(0)]inter and [Ag1Cu]surf after doping Ag-single atoms. Three different elementary reaction steps including N-H activation of amines, CO2 hydrogenation and C-N coupling are involved and interface sites are beneficial for N-H activation and surface sites are conducive to CO2 hydrogenation and C-N coupling. Importantly, N-H activation and C-N coupling for N,N-dimethylation are more favorable over [Ag(I)-O/Cu(0)]inter and [Ag1Cu]surf regulating the selectivity, due to the orbitals matching and lower energy barrier.
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