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April 23, 2026Surface Science and Technology2 citationsOpen Access

Synergistic ligand–photon interactions for enhanced CO2 electroreduction on Cu-based electrodes

HSHuieun ShimChungnam National UniversityGYGaeun YunChungnam National UniversityYGYunji GwonChungnam National University

Key Points

  • The aim is to investigate how molecular coordination and photothermal excitation enhance CO2 electroreduction selectivity on copper-based electrodes.
  • Phenanthroline-functionalized Cu electrodes were laser-treated and analyzed under different conditions for CO2 electroreduction.
  • Electrochemical impedance spectroscopy (EIS), X-ray photoelectron spectroscopy (XPS), and valence-band spectra were employed for characterization.
  • Performance metrics such as Faradaic efficiency and chain-growth probability were assessed during electrochemical reactions.
  • Phen–Cu electrodes achieved a total hydrocarbon Faradaic efficiency of 19.2%, significantly higher than bare Cu's 9.17%.
  • Localized photothermal activation at 520 nm quadrupled the C3+ hydrocarbon Faradaic efficiency from baseline values.
  • Optimal ligand concentration improved multicarbon selectivity, while variations in potential or ion concentration influenced product selectivity.

Abstract

We demonstrate that molecular coordination and photothermal excitation synergistically regulate CO2 electroreduction selectivity on Cu. Phenanthroline (Phen)–functionalized and laser-treated Cu electrodes were investigated under 0.1 M KHCO3 at various conditions. Phen–Cu exhibited a total hydrocarbon Faradaic efficiency (FE) of 19.2% and a chain-growth probability (α) of 0.333, surpassing bare Cu (9.17%, 0.224). Illumination at 520 nm triggered localized photothermal activation, quadrupling the C3+ hydrocarbon FE (0.076%). The optimum Phen concentration (0.25 μM) maximized multicarbon selectivity, while deviations in potential or ionic environment shifted selectivity toward C1 products. EIS analysis revealed the lowest charge-transfer resistance and highest capacitance for Phen–Cu520, indicating accelerated interfacial kinetics. XPS and valence-band spectra confirmed Cu0/Cu+ stabilization, persistent N−Cu coordination, and a VB onset shift associated with stronger electronic coupling. These results reveal that ligand-photothermal synergy creates a nonequilibrium, Cu0/Cu+-rich interface that promotes CO dimerization and chain growth, providing a new strategy for directing electrochemical Fischer–Tropsch-like chemistry.

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Cite This Study

Shim et al. (2026) studied this question.

synapsesocial.com/papers/69e9b71b85696592c86eb307https://doi.org/10.1007/s44251-026-00125-9
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