二氧化钛基光催化降解水中微塑料:现状、挑战和未来展望

IF 6.6 2区 工程技术 Q1 ENGINEERING, CHEMICAL Journal of water process engineering Pub Date : 2025-04-01 Epub Date: 2025-03-13 DOI:10.1016/j.jwpe.2025.107465
Danilo Bertagna Silva , Ana C. Marques
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引用次数: 0

摘要

微塑料由于其持久性、在水体中的广泛存在以及对生态系统和人类的不确定毒性影响而日益成为环境问题。二氧化钛基光催化已经成为一种很有前途的降解微塑料的方法,但它的应用仍然主要局限于受控的实验室环境。本文综述了光催化降解聚乙烯、聚丙烯、聚苯乙烯、聚氯乙烯和聚对苯二甲酸乙二醇酯等常见塑料的最新进展。这个过程包括产生活性氧,它引发链式反应,将聚合物链分解成更小的副产物。然而,缺乏标准化的方案使光催化微塑料降解性能的评估复杂化,特别是在复杂的废水环境中。尽管tio2具有成本低、稳定性好等优点,但其光催化效率经常受到太阳光谱效率低、传质限制和电荷重组等因素的阻碍。这些挑战导致了低降解率和不一致的结果。需要进一步研究改进光催化剂设计、反应器配置和降解评估技术的标准化。此外,潜在的有害副产品的形成引起了关注,需要进一步调查其生态毒理学影响。当与其他处理方法相结合时,tio2光催化显示出解决水处理中微塑料污染和其他新出现污染物的希望。
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TiO₂-based photocatalytic degradation of microplastics in water: Current status, challenges and future perspectives
Microplastics are a growing environmental concern due to their persistence, widespread presence in water bodies and uncertain toxic effects on ecosystems and humans. TiO₂-based photocatalysis has emerged as a promising method for degrading microplastics, yet its application is still largely confined to controlled laboratory settings. This review highlights recent developments in the photocatalytic degradation of common plastics such as polyethylene, polypropylene, polystyrene, polyvinyl chloride and polyethylene terephthalate. The process involves generating reactive oxygen species, which initiate chain reactions that break down polymer chains into smaller byproducts. However, the lack of standardized protocols complicates the assessment of photocatalysis performance for microplastic degradation, especially in complex wastewater environments. Despite TiO₂’s advantages, including low cost and stability, its photocatalytic efficiency is often hindered by factors like low solar spectrum efficiency, mass transfer limitations, and charge recombination. These challenges result in low degradation rates and inconsistent outcomes. Further research is needed to improve photocatalyst design, reactor configurations and the standardization of degradation assessment techniques. Additionally, the potential formation of harmful byproducts raises concerns, requiring further investigation of their ecotoxicological impacts. When combined with other treatment methods, TiO₂ photocatalysis shows promise for addressing microplastic pollution and other emerging pollutants in water treatment.
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来源期刊
Journal of water process engineering
Journal of water process engineering Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
10.70
自引率
8.60%
发文量
846
审稿时长
24 days
期刊介绍: The Journal of Water Process Engineering aims to publish refereed, high-quality research papers with significant novelty and impact in all areas of the engineering of water and wastewater processing . Papers on advanced and novel treatment processes and technologies are particularly welcome. The Journal considers papers in areas such as nanotechnology and biotechnology applications in water, novel oxidation and separation processes, membrane processes (except those for desalination) , catalytic processes for the removal of water contaminants, sustainable processes, water reuse and recycling, water use and wastewater minimization, integrated/hybrid technology, process modeling of water treatment and novel treatment processes. Submissions on the subject of adsorbents, including standard measurements of adsorption kinetics and equilibrium will only be considered if there is a genuine case for novelty and contribution, for example highly novel, sustainable adsorbents and their use: papers on activated carbon-type materials derived from natural matter, or surfactant-modified clays and related minerals, would not fulfil this criterion. The Journal particularly welcomes contributions involving environmentally, economically and socially sustainable technology for water treatment, including those which are energy-efficient, with minimal or no chemical consumption, and capable of water recycling and reuse that minimizes the direct disposal of wastewater to the aquatic environment. Papers that describe novel ideas for solving issues related to water quality and availability are also welcome, as are those that show the transfer of techniques from other disciplines. The Journal will consider papers dealing with processes for various water matrices including drinking water (except desalination), domestic, urban and industrial wastewaters, in addition to their residues. It is expected that the journal will be of particular relevance to chemical and process engineers working in the field. The Journal welcomes Full Text papers, Short Communications, State-of-the-Art Reviews and Letters to Editors and Case Studies
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