Optimization of photo-fenton process with Fe@Fe2O3 nanowires for carbamazepine degradation in wastewater

(2025) Optimization of photo-fenton process with Fe@Fe2O3 nanowires for carbamazepine degradation in wastewater. Desalination and Water Treatment. p. 13. ISSN 1944-3994

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Abstract

Pharmaceutical contaminants such as carbamazepine (CBZ) are frequently detected in aquatic environments due to their widespread use and resistance to conventional wastewater treatment. CBZ poses serious ecological and health risks, including endocrine disruption and neurotoxicity. This study systematically evaluated the efficiency of the Fe@Fe2O3 nanowire-assisted photo-Fenton process for CBZ degradation in aqueous solutions. Batch experiments were conducted using a UV-C photoreactor under various conditions: pH (4-7), CBZ concentration (7-15 mg/L), catalyst dosage (350-1050 mg/L), reaction time (5-25 min), FeSO4 center dot 7H(2)O and H2O2 concentrations, and UV intensity (0.15-0.45 mW/cm(2)). Sample preparation was conducted using dispersive liquid-liquid microextraction (DLLME), followed by quantification of CBZ via high-performance liquid chromatography (HPLC). The process optimization was carried out using Response Surface Methodology (RSM) employing a Box-Behnken Design (BBD). Maximum CBZ removal efficiency (100 ) was achieved at pH 4.9, UV intensity 2.3 mW/cm(2), H2O2 concentration 5.5 mg/L, FeSO4 center dot 7H(2)O concentration 7.5 mg/L, catalyst dosage 758 mg/L, and reaction time 15.2 min. Results demonstrate that the Fe@Fe2O3-assisted photo-Fenton process is a highly effective advanced oxidation technique for CBZ removal from contaminated water. Furthermore, the RSM-BBD model accurately optimized the process parameters, achieving maximum degradation efficiency under optimal conditions.

Item Type: Article
Keywords: Photo-Fenton process Carbamazepine Fe@Fe2O3 nanowires Wastewater treatment Response surface methodology Advanced oxidation advanced oxidation processes removal pharmaceuticals kinetics environment diclofenac persulfate mechanism uv Engineering Water Resources
Page Range: p. 13
Journal or Publication Title: Desalination and Water Treatment
Journal Index: ISI
Volume: 324
Identification Number: https://doi.org/10.1016/j.dwt.2025.101573
ISSN: 1944-3994
Depositing User: خانم ناهید ضیائی
URI: http://eprints.mui.ac.ir/id/eprint/33055

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