Bio-based matrix photocatalysts for photodegradation of antibiotics.

IF 3.2 3区 化学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Photochemical & Photobiological Sciences Pub Date : 2024-03-01 Epub Date: 2024-02-24 DOI:10.1007/s43630-024-00536-3
Nidia Maldonado-Carmona, Giusi Piccirillo, Jérémy Godard, Karine Heuzé, Emilie Genin, Nicolas Villandier, Mário J F Calvete, Stéphanie Leroy-Lhez
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引用次数: 0

Abstract

Antibiotics development during the last century permitted unprecedent medical advances. However, it is undeniable that there has been an abuse and misuse of antimicrobials in medicine and cosmetics, food production and food processing, in the last decades. The pay toll for human development and consumism is the emergence of extended antimicrobial resistance and omnipresent contamination of the biosphere. The One Health concept recognizes the interconnection of human, environmental and animal health, being impossible alter one without affecting the others. In this context, antibiotic decontamination from water-sources is of upmost importance, with new and more efficient strategies needed. In this framework, light-driven antibiotic degradation has gained interest in the last few years, strongly relying in semiconductor photocatalysts. To improve the semiconductor properties (i.e., efficiency, recovery, bandgap width, dispersibility, wavelength excitation, etc.), bio-based supporting material as photocatalysts matrices have been thoroughly studied, exploring synergetic effects as operating parameters that could improve the photodegradation of antibiotics. The present work describes some of the most relevant advances of the last 5 years on photodegradation of antibiotics and other antimicrobial molecules. It presents the conjugation of semiconductor photocatalysts to different organic scaffolds (biochar and biopolymers), then to describe hybrid systems based on g-C3N4 and finally addressing the emerging use of organic photocatalysts. These systems were developed for the degradation of several antibiotics and antimicrobials, and tested under different conditions, which are analyzed and thoroughly discussed along the work.

Abstract Image

用于抗生素光降解的生物基基质光催化剂。
上世纪抗生素的发展带来了前所未有的医学进步。然而,不可否认的是,在过去几十年中,抗菌剂在医药和化妆品、食品生产和食品加工中被滥用和误用。人类发展和消费主义付出的代价是抗菌素耐药性的扩大和生物圈无处不在的污染。一体健康 "概念认为,人类健康、环境健康和动物健康是相互关联的,不可能只改变其中一个而不影响其他。在这种情况下,水源中的抗生素净化就显得尤为重要,需要采用更有效的新策略。在这一框架下,光驱动的抗生素降解技术在过去几年中受到了广泛关注,这主要依赖于半导体光催化剂。为了改善半导体特性(即效率、回收率、带隙宽度、分散性、激发波长等),人们对作为光催化剂基质的生物基支撑材料进行了深入研究,探索作为操作参数的协同效应,以改善抗生素的光降解。本论文介绍了过去 5 年在抗生素和其他抗菌分子光降解方面取得的一些最重要的进展。它介绍了半导体光催化剂与不同有机支架(生物炭和生物聚合物)的共轭,然后描述了基于 g-C3N4 的混合系统,最后探讨了有机光催化剂的新兴用途。这些系统是为降解几种抗生素和抗菌剂而开发的,并在不同条件下进行了测试。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Photochemical & Photobiological Sciences
Photochemical & Photobiological Sciences 生物-生化与分子生物学
CiteScore
5.60
自引率
6.50%
发文量
201
审稿时长
2.3 months
期刊介绍: A society-owned journal publishing high quality research on all aspects of photochemistry and photobiology.
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