Tiehong Song , Ying Zhang , Hongyan Wei , Ying Wang , Yanjiao Gao
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引用次数: 0
Abstract
The frequent presence of antibiotics like oxytetracycline (OTC) in aquatic environments has raised significant concerns owing to their potential to cause antibiotic resistance genes and ecological risks, demanding efficient and sustainable remediation methods. This study developed a novel iron-modified biochar (4MBC800) derived from fermented grain residues to activate periodate (PI) for OTC degradation. The biochar was prepared via pyrolysis and characterized by various instruments, revealing a well-developed porous structure and high specific surface area. Under operating conditions (OTC = 20.4 mg/L, 4MBC800 = 1.1 g/L, PI = 3.3 g/L, t = 150 min), 92.1% of OTC was effectively removed. Radical quenching experiments and HPLC-MS analysis identified •OH, •O2−, and 1O2 as the dominant reactive species driving OTC degradation through three distinct pathways. The 4MBC800/PI system demonstrated robust catalytic performance, reusability, and adaptability across different water matrices without generating toxic byproducts. This work provides new insights into the design of waste-derived catalysts for periodate-based advanced oxidation processes in antibiotic-contaminated water treatment.
期刊介绍:
in Shams Engineering Journal is an international journal devoted to publication of peer reviewed original high-quality research papers and review papers in both traditional topics and those of emerging science and technology. Areas of both theoretical and fundamental interest as well as those concerning industrial applications, emerging instrumental techniques and those which have some practical application to an aspect of human endeavor, such as the preservation of the environment, health, waste disposal are welcome. The overall focus is on original and rigorous scientific research results which have generic significance.
Ain Shams Engineering Journal focuses upon aspects of mechanical engineering, electrical engineering, civil engineering, chemical engineering, petroleum engineering, environmental engineering, architectural and urban planning engineering. Papers in which knowledge from other disciplines is integrated with engineering are especially welcome like nanotechnology, material sciences, and computational methods as well as applied basic sciences: engineering mathematics, physics and chemistry.