• • FeCl3 anchoring on g-C3N4 achieves high dispersion, enabling efficient photo-Fenton degradation of oxytetracycline, with performance validated in Water Research (2024) – critical for treating antibiotic-laden wastewater.
• • Z-scheme γ-Fe2O3/g-C3N4 in Photo-Fenton reaction degrades oxytetracycline, with mechanism and DFT calculations confirming enhanced charge separation – provides a design blueprint for solar-driven remediation.
• • Oxygen vacancy engineering and built-in electric field in Fe-g-C3N4/Bi2MoO6 Z-scheme heterojunction boosts photo-Fenton degradation of tetracycline, achieving superior performance (Small, 2024) – addresses recalcitrant antibiotic residues.
• • Nitrogen-doped carbon quantum dots modified dual-vacancy Z-scheme CuFe2O4/g-C3N4 synergizes with Fenton technique for photothermal degradation of antibiotics (Chemical Engineering Journal, 2024) – demonstrates multifunctional integration for enhanced efficiency.