Photocatalytic Decomposition of Amoxicillin Using Zinc Ferrite Nanoparticles

Author:

Jezzini Aya1,Chen Yujin1,Davidson Anne1ORCID,Wallez Gilles2,Hamieh Tayssir34ORCID,Toufaily Joumana4ORCID

Affiliation:

1. Laboratoire de Réactivité de Surface LRS, Sorbonne Université, UMR 7197, 75252 Paris, France

2. Institut de Recherche de Paris, UMR 8247, Physicochimie des Matériaux Témoins de l’Histoire, 75001 Paris, France

3. Faculty of Science and Engineering, Maastricht University, P.O. Box 616, 6200 MD Maastricht, The Netherlands

4. Laboratory of Materials, Catalysis, Environment and Analytical Methods (MCEMA), Faculty of Sciences, Lebanese University, Badaro, Beirut P.O. Box 6573/14, Lebanon

Abstract

Catalysts enriched in Zinc ferrite (ZFO) were synthesized using coprecipitation and hydrothermal methods. Mixtures of crystalline nanoparticles (ZFO and α-Fe2O3, several allotropic varieties of FeO) were characterized by various techniques such as X-ray diffraction (XRD), transmission electron microscopy (TEM, SEM), N2 sorption, UV-visible spectrophotometry (UV-Vis) and X-ray photoelectron spectroscopy (XPS). After detailed characterizations, the catalytic performance of the solids (1 g/L) in the degradation of amoxicillin (AMX) (10 mg/L) as an antibiotic pollutant in water was evaluated. In addition, we used air as the oxygen source and adjusted the pH to 5.0. Consequently, the catalysts obtained via the hydrothermal method HT-ZFO had a high activity (100% of AMX removal in less than 100 min when an LED (75 W) light was used) compared to a similar mixture of oxides with graphene HT-ZFO-GO (a longer time of 150 min) that was necessary for the complete degradation of AMX. Impregnation with an aqueous solution containing 80 mg of GO obtained using Hummer’s method, reduced into RGO by an ultrasound treatment, enhances the initial reaction rate but is associated with a prolonged time for complete AMX removal (10 ppm in water) that we attribute to its spontaneous corrosion.

Funder

MCEMA Laboratory

Sorbonne University, CNRS and Région Ile de France

Publisher

MDPI AG

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