With increasing carbon dioxide concentrations in the atmosphere, the utilization and conversion of CO2 into valuable materials is an important goal. In recent years, evidence has emerged of low-valent iron-porphyrin complexes able to bind CO2 and reduce it to carbon monoxide and water. To find out how the porphyrin scaffold and second coordination sphere influence the CO2 reduction on iron-porphyrin complexes, we study the structure, electronic and redox properties of a novel crown-ether appended porphyrin complex with cation (K+) binding site. Cyclic voltammetry studies show that the K+ binding site does not change the Fe0/I and FeI/II redox potentials of the complexes. Subsequently, density functional theory calculations were performed on the catalytic cycle of CO2 reduction on the K+-bound crown-ether appended iron-porphyrin complex. The work shows that proton-donors such as acetic acid bind the K+ strongly and can assist with efficient and fast proton transfer that leads to the conversion of CO2 to CO and water. In agreement with experiment, the calculations show little perturbations of the redox potentials upon binding K+ to the crown-ether scaffold.

Zhu, C., Koovakattil Surendren, A., D'Agostino, C., Roithová, J., De Visser, S. (2025). CO2 Reduction to CO on an Iron-Porphyrin Complex with Crown-Ether Appended Cation-Binding Site. DALTON TRANSACTIONS, 54(15), 4918-4926 [10.1039/D5DT00119F].

CO2 Reduction to CO on an Iron-Porphyrin Complex with Crown-Ether Appended Cation-Binding Site

Carmine D'Agostino;
2025

Abstract

With increasing carbon dioxide concentrations in the atmosphere, the utilization and conversion of CO2 into valuable materials is an important goal. In recent years, evidence has emerged of low-valent iron-porphyrin complexes able to bind CO2 and reduce it to carbon monoxide and water. To find out how the porphyrin scaffold and second coordination sphere influence the CO2 reduction on iron-porphyrin complexes, we study the structure, electronic and redox properties of a novel crown-ether appended porphyrin complex with cation (K+) binding site. Cyclic voltammetry studies show that the K+ binding site does not change the Fe0/I and FeI/II redox potentials of the complexes. Subsequently, density functional theory calculations were performed on the catalytic cycle of CO2 reduction on the K+-bound crown-ether appended iron-porphyrin complex. The work shows that proton-donors such as acetic acid bind the K+ strongly and can assist with efficient and fast proton transfer that leads to the conversion of CO2 to CO and water. In agreement with experiment, the calculations show little perturbations of the redox potentials upon binding K+ to the crown-ether scaffold.
2025
Zhu, C., Koovakattil Surendren, A., D'Agostino, C., Roithová, J., De Visser, S. (2025). CO2 Reduction to CO on an Iron-Porphyrin Complex with Crown-Ether Appended Cation-Binding Site. DALTON TRANSACTIONS, 54(15), 4918-4926 [10.1039/D5DT00119F].
Zhu, Chengxu; Koovakattil Surendren, Adarsh; D'Agostino, Carmine; Roithová, Jana; De Visser, Samuel
File in questo prodotto:
File Dimensione Formato  
Zhu et al., 2025.pdf

accesso aperto

Tipo: Versione (PDF) editoriale / Version Of Record
Licenza: Licenza per Accesso Aperto. Creative Commons Attribuzione (CCBY)
Dimensione 1.59 MB
Formato Adobe PDF
1.59 MB Adobe PDF Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/1007967
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 0
  • ???jsp.display-item.citation.isi??? 0
social impact