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Updated: May 5, 2026

The Effect of Interfacial Chemical Bonding in TiO2-SiO2 Composites on Their Photocatalytic NOx Abatement Performance
Published on: July 4, 2017
Tailoring the surface and interface structures of carbon nitride for enhanced photocatalytic self-Fenton process in
Chunhui Zou1, Churong Wang1, Peiqi Song1
1GuangDong Engineering Technology Research Center of Advanced Polymer Synthesis, Key Laboratory for Preparation and Application of Ordered Structural Materials of Guangdong Province, College of Chemistry and Chemical Engineering, Shantou University, Guangdong 515063 China.
Abstract:
Fenton technology faces significant challenges due to external H2O2 dependency and inadequate Fe2+ regeneration. Constructing a photocatalytic self-Fenton system is a promising strategy, but it is hindered by slow charge dynamics and low mass transfer of reactant ions. Here, we present a multi-engineering co-modified carbon nitride (OCN) for efficient photocatalytic self-Fenton reactions. By calcining a mixture of OCN and sodium cyanoborohydride (NaBH3CN), abundant surface defects (CN groups and N vacancies) and doping (B and O) were simultaneously introduced. NaBH3CN breaks OCN nanosheets into smaller fragments, which then stack into larger pieces, creating multiple order-disorder interfaces. These modifications synergistically tune the band structure, enhance charge dynamics, and facilitate spatially separated redox centers. More importantly, the abundant N vacancies effectively adsorb and activate O2. The electron-rich regions around B and CN sites, derived from their electron-withdrawing effect, enhance H+ and Fe3+ adsorption on the catalyst surface, thereby accelerating H2O2 generation and Fe3+ photoreduction. The H2O2 and Fe2+ generated in the same region rapidly interact, initiating the Fenton reaction to degrade pollutants and enhancing activation kinetics by shortening contact distance. This work provides new insights into the design of efficient and eco-friendly photocatalysis-self-Fenton systems for wastewater treatment by tailoring the surface and interface structures of catalysts.

