AI Article Synopsis

  • Iron complexes with a specific ligand efficiently catalyze the electrochemical reduction of CO to CO in acetonitrile, achieving 90-99% selectivity and notable faradaic efficiency.
  • The process involves a mononuclear iron intermediate and utilizes phenol as a proton donor, demonstrating first-order kinetics.
  • The low-cost, easily synthesized salophen ligand allows for potential improvements in catalyst design, while also leading to the formation of iron-based nanoparticles, which have their own catalytic activities.

Article Abstract

Iron complexes with a N O -type N,N'-bis(salicylaldehyde)-1,2-phenylenediamine salophen ligand catalyze the electrochemical reduction of CO to CO in acetonitrile with phenol as the proton donor, giving rise to 90-99 % selectivity, faradaic efficiency up to 58 %, and turnover frequency up to 10  s at an overpotential of 0.65 V. This novel class of molecular catalyst for CO reduction operate through a mononuclear Fe intermediate, with phenol being involved in the process with first-order kinetics. The molecular nature of the catalyst and the low cost, easy synthesis and functionalization of the salophen ligand paves the way for catalyst engineering and optimization. Competitive electrodeposition of the coordination complex at the electrode surface results in the formation of iron-based nanoparticles, which are active towards heterogeneous electrocatalytic processes mainly leading to proton reduction to hydrogen (faradaic efficiency up to 80 %) but also to the direct reduction of CO to methane with a faradaic efficiency of 1-2 %.

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Source
http://dx.doi.org/10.1002/cssc.202001143DOI Listing

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