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October 16, 2025Inorganic Chemistry3 citations

Cobalt(II) Phthalocyanine Substituents Tune the Electrocatalytic CO2 Conversion to Methanol

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MBMariam BarakatEFEmmanuel Adu FosuEJElena Jakubı́ková

Key Points

  • Cobalt phthalocyanine derivatives enhance CO2 reduction to methanol, with electron-withdrawing groups improving catalytic efficiency.
  • Density functional theory reveals that substituents significantly affect electronic structure and reactivity of the electrocatalyst.
  • Electron-donating groups can hinder CO2 conversion efficiency by promoting competing hydrogen evolution reactions.
  • Shifts in reduction potentials directly influence the selectivity and efficiency of methanol production from CO2.

Abstract

Cobalt phthalocyanine (Co(II)Pc) and its derivatives are promising molecular electrocatalysts for the electrochemical reduction of CO2 to CO and methanol (CH3OH). Despite increasing interest, a detailed mechanistic understanding of how ligand substituents influence catalytic activity, selectivity, and efficiency remains limited. In this study, we employ density functional theory (DFT) to systematically investigate the influence of electron-donating groups (EDGs) and electron-withdrawing groups (EWGs) on the electronic structure and redox properties of Co(II)Pc electrocatalyst, and to elucidate CO2RR mechanistic pathways. Our results reveal that EWGs cause a positive shift in the reduction potentials, favor CO2 binding over protonation of the Co metal center and promote downstream methanol formation at mild potentials. EDGs show opposite trends including favorable protonation steps, promoting a negative shift in the reduction potential, and facilitating the hydrogen evolution reaction (HER), competing with the desired CO2RR pathway. Notably, CO dissociation is thermodynamically and kinetically unfavorable across all systems, positioning the redox potential versus CO dissociation energy as a key factor for methanol selectivity. These insights provide a predictive framework for rational catalyst design and underscore the critical role of electronic tuning in advancing molecular electrocatalysts for sustainable CO2 conversion.

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Cite This Study

Barakat et al. (2025) studied this question.

synapsesocial.com/papers/68f04920e559138a1a06d827https://doi.org/10.1021/acs.inorgchem.5c02279
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