利用半导体基光催化剂可持续去除抗生素的新策略。

IF 2.6 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Beilstein Journal of Nanotechnology Pub Date : 2025-02-25 eCollection Date: 2025-01-01 DOI:10.3762/bjnano.16.21
Yunus Ahmed, Keya Rani Dutta, Parul Akhtar, Md Arif Hossen, Md Jahangir Alam, Obaid A Alharbi, Hamad AlMohamadi, Abdul Wahab Mohammad
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引用次数: 0

摘要

在不断发展的环境可持续性领域,新发现的污染物,特别是抗生素的威胁已成为一个至关重要的问题。这些药物物质在水源中的广泛存在对人类健康和生态平衡构成了复杂的危害,需要立即采用新的干预技术。有鉴于此,基于半导体的光催化剂已成为有希望的候选者,为从水生生态系统中去除抗生素提供了一种可持续和有效的方法。纳米材料可以利用自由基活性氧与非自由基等效物在光照射下的复杂相互作用,高效、选择性地精确分解和中和抗生素化合物。虽然光催化剂有一定的缺点,如吸收光的能力有限,以及对催化稳定性的担忧,但光催化在多个方面都优于其他高级氧化工艺。本研究重点综述了利用半导体光催化剂可持续去除抗生素的最新进展。通过对最新研究和可持续技术的回顾,本研究对污染物与催化降解过程之间的复杂关系提出了新的见解。与单一光催化剂和二元光催化剂相比,改性三元复合材料在可见光下具有更好的光降解性能。g- c3n4基三元光催化剂在辐照1小时内对四环素和磺胺嘧啶类抗生素的降解率达到90%以上。本研究解决了光催化过程中抗生素降解效率的问题,并提出了提高性能和可扩展性的新方法,以便在现实世界中得到更广泛的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Emerging strategies in the sustainable removal of antibiotics using semiconductor-based photocatalysts.

In the constantly growing field of environmental sustainability, the threat of newly discovered pollutants, particularly antibiotics, has become a crucial concern. The widespread presence of these pharmaceutical substances in water sources presents a complex hazard to human health and ecological balance, requiring immediate and novel intervention techniques. Regarding this, semiconductor-based photocatalysts have appeared as promising candidates, providing a sustainable and efficient way to remove antibiotics from aquatic ecosystems. Nanomaterials can effectively and precisely break down and neutralize antibiotic compounds with high efficiency and selectivity by utilizing a complex interaction between radical reactive oxygen species and non-radical equivalents under light irradiation. Although photocatalysts have certain drawbacks, such as a limited capacity to absorb light and concerns about catalytic stability, photocatalysis outperforms other advanced oxidation processes in multiple aspects. This study focuses on summarizing recent advances in the sustainable removal of antibiotics using semiconductor-based photocatalysts. By reviewing the latest studies and sustainable technologies, this study presents new insights into the complex relationship between contaminants and catalytic degradation processes. Compared to single and binary photocatalysts, modified ternary composites were found to have superior photodegradation performance under visible light exposure. To be specific g-C3N4-based ternary photocatalysts exhibited more than 90% degradation of tetracycline and sulfamethazine antibiotics within one hour of irradiation. This study addresses the antibiotic degradation efficiency during photocatalytic processes and suggests new approaches to improve the performance and scalability for wider use in real-world situations.

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来源期刊
Beilstein Journal of Nanotechnology
Beilstein Journal of Nanotechnology NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
5.70
自引率
3.20%
发文量
109
审稿时长
2 months
期刊介绍: The Beilstein Journal of Nanotechnology is an international, peer-reviewed, Open Access journal. It provides a unique platform for rapid publication without any charges (free for author and reader) – Platinum Open Access. The content is freely accessible 365 days a year to any user worldwide. Articles are available online immediately upon publication and are publicly archived in all major repositories. In addition, it provides a platform for publishing thematic issues (theme-based collections of articles) on topical issues in nanoscience and nanotechnology. The journal is published and completely funded by the Beilstein-Institut, a non-profit foundation located in Frankfurt am Main, Germany. The editor-in-chief is Professor Thomas Schimmel – Karlsruhe Institute of Technology. He is supported by more than 20 associate editors who are responsible for a particular subject area within the scope of the journal.
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