水环境中微塑料的光催化去除技术研究进展

Recent Advances in Photocatalytic Removal Technology of Microplastics from Aquatic Environments

  • 摘要: 微塑料作为一类新兴环境污染物,在水体中广泛存在,因其粒径小、难降解、易吸附协同污染物,对生态系统与人体健康构成潜在威胁,传统水处理技术对微塑料的去除效率有限,亟需发展绿色高效的深度处理技术;光催化技术可在温和条件下产生活性氧物种,驱动微塑料发生氧化断链与矿化,并可通过光重整路径实现其资源化转化,近年来受到广泛关注。本文系统梳理了水体微塑料的来源、污染特征与环境健康风险,阐明了微塑料光催化转化的核心反应机理,重点总结了TiO2基、ZnO基、石墨相氮化碳基、铋系及金属有机框架等主流光催化材料体系的研究进展与改性策略,剖析了当前该领域存在的催化转化效率低、实际水体适配性不足、降解产物生态风险不明等瓶颈问题,并对未来研究方向进行了展望,以期为水体微塑料光催化治理技术的研发与工程应用提供系统的理论参考与技术支撑。

     

    Abstract: As an emerging environmental contaminant, microplastics are widely distributed in aquatic environments. With the characteristics of small particle size, high recalcitrance to degradation, and strong adsorption capacity for co-occurring pollutants, they pose severe potential threats to ecosystems and human health. Conventional water treatment technologies exhibit limited removal efficiency for microplastics, creating an urgent need to develop green and efficient advanced treatment technologies. Photocatalytic technology has attracted extensive attention in recent years: it can generate reactive oxygen species (ROS) under mild conditions to drive the oxidative chain scission and mineralization of microplastics, and realize the resource valorization of microplastics through the photoreforming pathway. This paper systematically reviews the sources, pollution characteristics, and environmental and health risks of microplastics in water environments, clarifies the core reaction mechanism of photocatalytic conversion of microplastics, and focuses on summarizing the research progress and modification strategies of mainstream photocatalytic material systems including TiO2-based, ZnO-based, graphitic carbon nitride (g-C3N4)-based, bismuth-based materials and metal-organic frameworks (MOFs). Meanwhile, it analyzes in depth the existing bottleneck issues in this field, such as low catalytic conversion efficiency, poor adaptability in real water matrices, and unclear ecological risks of degradation products, and prospects the future research directions, with the aim of providing systematic theoretical references and technical support for the research, development and engineering application of photocatalytic remediation technologies for microplastics in aquatic environments.

     

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