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March 5, 2026Catalysts0 citationsOpen Access

Molecular Catalysis of CO2 Reduction by Zn(TPA)(H2O)SO4: Electrochemical and Mechanistic Characterization

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MCMarisela Cruz-RamírezLTLuis Gabriel Talavera-ContrerasOZOmar Monsalvo Zúñiga

Key Points

  • The research aims to evaluate the catalytic efficiency of a zinc-based compound for CO2 reduction and to understand its electrochemical mechanisms.
  • Synthesis and characterization of [Zn(TPA)(H2O)]SO4 using FT–IR, UV–Vis, TGA, and NMR spectroscopy.
  • Electrochemical analysis through cyclic voltammetry revealing irreversible behavior and catalytic activity.
  • Application of Foot-of-the-Wave Analysis to determine the catalytic rate constant and product formation through bulk electrolysis experiments.
  • Use of electrochemical impedance spectroscopy to study the electrode–electrolyte interface and DFT calculations for detailed interaction analysis.
  • Cyclic voltammetry displayed two significant cathodic peaks indicating irreversible electrochemical behavior.
  • A catalytic wave at Epc = −1.87 V under CO2 atmosphere indicated effective CO2 reduction activity.
  • Format was identified as the main product from the catalyzed CO2 reduction process.
  • FOWA analysis provided a catalytic rate constant of 1.352 × 10^3 M−1 s−1.

Abstract

In this work, the coordination compound sulfate of aquatris (2-pyridylmethyl) aminezinc (II) (Zn (TPA) (H2O) SO4) is investigated as a catalyst for the molecular reduction of CO2. The complex was synthesized and characterized by FT–IR, UV–Vis, TGA, and NMR spectroscopy. Cyclic voltammetry reveals irreversible electrochemical behavior, with two cathodic peaks at Epc = −1. 72 V and Epc = −1. 99 V vs. Fc/Fc+, respectively. Under a CO2 atmosphere, a catalytic wave appears at Epc = −1. 87 V vs. Fc/Fc+, indicating catalytic activity toward CO2 reduction. This behavior was further confirmed by Foot-of-the-Wave Analysis (FOWA), which yielded a catalytic rate constant of (k = 1. 352 × 103 M−1 s−1). Bulk electrolysis experiments combined with FT–IR analysis suggest that format is the main product of the CO2 reduction catalyzed by Zn (TPA) (H2O) SO4. Electrochemical impedance spectroscopy was used to examine the catalytic process at the electrode–electrolyte interface. In addition, density functional theory (DFT) calculations were conducted to analyze the interaction between the Zn (TPA) (H2O) SO4 complex and CO2.

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Cite This Study

Cruz-Ramírez et al. (2026) studied this question.

synapsesocial.com/papers/69a91dd2d6127c7a504c10d1https://doi.org/10.3390/catal16030229
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