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Researchers developed rhenium complexes to mimic CODH for CO2 reduction. The complexes show strong electrode deposition, influenced by linker flexibility, but this hinders subsequent C-O bond cleavage.

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Area of Science:

  • Electrochemistry
  • Organometallic Chemistry
  • Catalysis

Background:

  • The carbon monoxide dehydrogenase (CODH) enzyme utilizes a bimetallic active site for synergistic catalysis of CO2/CO interconversion.
  • Developing artificial systems that mimic CODH active sites is crucial for efficient CO2 reduction.
  • Lewis acid assistance is a potential strategy to enhance CO2 reduction reactions.

Purpose of the Study:

  • To design and synthesize rhenium dipyridine derivatives incorporating a Lewis acid moiety (KN18C6) for CO2 reduction.
  • To investigate the effect of the KN18C6 moiety on electrode deposition and CO2 reduction reaction (CO2RR) performance.
  • To understand the mechanism of electrode deposition and its impact on catalytic activity.

Main Methods:

  • Synthesis of rhenium dipyridine derivatives with varying linker flexibility to the KN18C6 moiety.
  • Electrochemical characterization including cyclic voltammetry and chronoamperometry.
  • Infrared spectroelectrochemistry (IR-SEC) and control experiments to elucidate deposition mechanism.

Main Results:

  • The developed rhenium complexes exhibit strong electrode deposition under CO2 in the presence of potassium cations.
  • Deposition rate correlates with the flexibility of the linkage between the rhenium framework and the KN18C6 moiety; more flexible linkers lead to faster deposition.
  • While deposition enhances CO2RR initiation, it unfortunately inhibits the subsequent C-O bond cleavage step.

Conclusions:

  • Rhenium dipyridine derivatives functionalized with KN18C6 can effectively promote electrode deposition during CO2RR.
  • Linker flexibility is a key factor controlling the deposition rate, offering a design parameter for catalyst immobilization.
  • The observed deposition, while beneficial for initial CO2 activation, poses a challenge for complete CO2 conversion by hindering C-O bond cleavage.