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Selective CO2 Electrochemical Reduction Enabled by a Tricomponent Copolymer Modifier on a Copper Surface.

Jianchun WangTao ChengAidan Q FenwickTurki Nabieh BaroudAlonso Rosas-HernándezJeong Hoon KoQuan GanWilliam A Goddard IiiRobert H Grubbs
Published in: Journal of the American Chemical Society (2021)
Electrochemical CO2 reduction over Cu could provide value-added multicarbon hydrocarbons and alcohols. Despite recent breakthroughs, it remains a significant challenge to design a catalytic system with high product selectivity. Here we demonstrate that a high selectivity of ethylene (55%) and C2+ products (77%) could be achieved by a highly modular tricomponent copolymer modified Cu electrode, rivaling the best performance using other modified polycrystalline Cu foil catalysts. Such a copolymer can be conveniently prepared by a ring-opening metathesis polymerization, thereby offering a new degree of freedom for tuning the selectivity. Control experiments indicate all three components are essential for the selectivity enhancement. A surface characterization showed that the incorporation of a phenylpyridinium component increased the film robustness against delamination. It was also shown that its superior performance is not due to a morphology change of the Cu underneath. Molecular dynamics (MD) simulations indicate that a combination of increased local CO2 concentration, increased porosity for gas diffusion, and the local electric field effect together contribute to the increased ethylene and C2+ product selectivity.
Keyphrases
  • molecular dynamics
  • density functional theory
  • metal organic framework
  • gold nanoparticles
  • aqueous solution
  • ionic liquid
  • room temperature
  • high resolution
  • mass spectrometry
  • highly efficient