EventsThe 3rd International Electronic Conference on Catalysis Sciences
Published
This submission belongs to the session B. Environmental Catalysis of the event The 3rd International Electronic Conference on Catalysis Sciences
Published date
21 Apr, 2025
Academic Editor
author-avatarAlbin Pintar
Citation
Omar BOUALAM, Synthesis and Photocatalytic Degradation of Tetracycline Using Ceₓ-Mn-Tiᵧ@Illite Catalyst, in Proceedings of The 3rd International Electronic Conference on Catalysis Sciences, 23 April–25 April 2025, MDPI: Basel, Switzerland
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Synthesis and Photocatalytic Degradation of Tetracycline Using Ceₓ-Mn-Tiᵧ@Illite Catalyst

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1. Process Engineering Department, Higher School of Technology of Fez – Sidi Mohamed Ben Abdellah University, Laboratory of Materials Process Catalysis Agri-Food and Environment (LMPCAE), Fez 30000, Morocco, Morocco
Abstract


Introduction:
The contamination of water bodies by pharmaceutical pollutants, such as tetracycline, poses a significant environmental threat. Traditional water treatment methods often fall short in effectively removing these pollutants. This study investigates the synthesis of a novel Ceₓ-Mn-Tiᵧ@illite catalyst, designed for the efficient photocatalytic degradation of tetracycline in aqueous solutions.

Methods:
The catalyst was synthesized by impregnating illite, a natural clay, with varying concentrations of cerium (Ce), manganese (Mn), and titanium (Ti) ions. The synthesis process was characterized using X-ray diffraction (XRD), scanning electron microscopy (SEM), and energy dispersive X-ray spectroscopy (EDX) to confirm the structural properties of the catalyst. Photocatalytic degradation experiments were carried out under UV light irradiation to evaluate the efficiency of tetracycline removal, with reaction parameters such as pH, catalyst dosage, and irradiation time varied to optimize performance.

Results:
The Ceₓ-Mn-Tiᵧ@illite catalyst showed significant photocatalytic activity, achieving a high degradation rate of tetracycline under optimal conditions. The catalyst demonstrated excellent stability and reusability over multiple cycles, maintaining its efficiency in pollutant removal. The reaction kinetics were analyzed, revealing that the degradation followed pseudo-first-order kinetics. The catalyst's efficiency was further enhanced by the synergistic effect of the metal dopants, which facilitated charge separation and improved photocatalytic performance.

Conclusions:
The Ceₓ-Mn-Tiᵧ@illite catalyst represents an effective and sustainable material for the removal of tetracycline from aqueous solutions. This study highlights the potential of clay-based catalysts in photocatalytic applications for environmental remediation. The results contribute to the development of cost-effective and eco-friendly materials for water treatment technologies, particularly for pharmaceutical pollutant degradation.

Keywords
Ceₓ-Mn-Tiᵧ@illite catalyst
photocatalysis
tetracycline degradation
water treatment
environmental remediation
materials science
clay-based catalysts
pharmaceutical pollutants
sustainable catalysts
reaction kinetics.
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