Advanced Fe-doped carbon xerogels as bifunctional electro-catalysts for targeted hydroxyl radical production and superior electro-Fenton pollutant removal in water
Metadatos
Mostrar el registro completo del ítemAutor
Ramírez Valencia, Lilian Daniela; Bailón García, Esther; Carrasco Marín, Francisco; Álvarez Merino, Miguel Ángel; Pérez Cadenas, Agustín FranciscoEditorial
Elsevier
Materia
Bifunctional Hydrothermal iron carbide Encapsulation Electro-Fenton Hydroxyl radicals
Fecha
2025-07-02Referencia bibliográfica
Ramírez-Valencia, L. D., Bailón-García, E., Carrasco-Marín, F., Álvarez-Merino, M. A., & Pérez-Cadenas, A. F. (2025). Advanced Fe-doped carbon xerogels as bifunctional electro-catalysts for targeted hydroxyl radical production and superior electro-Fenton pollutant removal in water. Chemical Engineering Journal, 519(165565), 165565. https://doi.org/10.1016/j.cej.2025.165565
Patrocinador
MICIU/AEI/10.13039/501100011033 - ERDF - European Union NextGenerationEU/PRTR (Grants PID2021-127803OB-I00 and CNS2023-144680); Andalusia 2021-2027 FEDER Operational Programme (DGF_PLSQ_2023_00183); MCIN/AEI/10.13039/501100011033 (RYC2020-029301-I); Universidad de Granada / CBUAResumen
Bifunctional catalysts for H2O2 production via oxygen reduction reaction (ORR) and OH• generation via Fenton
reaction are fundamental for the development and optimization of Electro-Fenton technology. In this context, Fedoped carbon xerogels have been synthesized by sol-gel polymerization under hydrothermal conditions, which
allowed the efficient encapsulation of iron nanoparticles (Fe3C-type crystalline species) within the carbon matrix.
This strategy enabled control over the selectivity of the materials towards a three-electron pathway, favoring the
direct production of hydroxyl radicals (OH•
). Moreover, a good balance between graphitization degree and
micro-mesoporous structure resulted in high electrochemical performance in ORR, reaching a kinetic current
density as high as 11.56 mA/cm2 at − 0.45 V and 32.66 mA/cm2 at − 0.80 V. This remarkable performance was
reflected in Electro-Fenton experiments, achieving 94% degradation of tetracycline after 8 h, demonstrating the
bifunctional effectiveness of the synthesized catalysts.





