水中全氟和多氟烷基物质的吸附去除技术研究进展

Research Progress on Adsorptive Removal Technologies for Per- and Polyfluoroalkyl Substances in Water

  • 摘要: PFAS因具有稳定的C-F键、较强环境持久性和潜在生物毒性,已成为水环境污染治理中的重点关注对象。吸附技术具有工艺成熟、运行条件温和和适用于低浓度污染物去除等优势,是目前PFAS水处理研究和工程应用中较为可行的方法之一。本文围绕水中PFAS吸附去除技术,系统梳理了PFAS在不同吸附剂上的主要作用机制,包括疏水作用、静电吸引、离子交换、孔填充、配位作用和分子聚集等;进一步综述了活性炭、离子交换树脂、金属有机框架、生物炭和共价有机框架等典型吸附材料的研究进展、性能特点及应用限制。综合比较表明,活性炭和离子交换树脂工程应用基础较好,但短链PFAS去除和饱和材料处置仍是主要问题;金属有机框架和共价有机框架具有结构可设计性和选择性吸附潜力,但稳定性、成本和规模化应用仍需突破;生物炭具有低成本和资源化优势,但吸附性能受原料和制备条件影响较大。未来研究应加强真实水体、低浓度、多组分PFAS体系和动态运行条件下的性能评价,并重视吸附剂再生、浓缩废液处置及生命周期环境影响,为PFAS污染水体的高效、经济和可持续治理提供支撑。

     

    Abstract: PFAS have become emerging contaminants of global concern due to their strong C-F bonds, high environmental persistence, mobility, and potential toxicity. Adsorption is considered one of the most practical technologies for PFAS removal from water because of its mild operating conditions, mature process configuration, and applicability to low-concentration contaminants. This review summarizes recent progress in the adsorptive removal of PFAS from aqueous environments. The main adsorption mechanisms, including hydrophobic interaction, electrostatic attraction, ion exchange, pore filling, coordination interaction, and molecular aggregation, are discussed. Typical adsorbent materials, including activated carbon, ion exchange resins, metal-organic frameworks, biochar, and covalent organic frameworks, are further reviewed with emphasis on their adsorption behavior, material characteristics, performance differences, and application limitations. Activated carbon and ion exchange resins remain the most practical options for engineering applications, but their performance for short-chain PFAS removal and the management of spent adsorbents remain challenging. Metal-organic frameworks and covalent organic frameworks exhibit high structural tunability and promising selectivity, while their stability, cost, scalability, and long-term operation still require further improvement. Biochar shows advantages in low cost and resource utilization, but its adsorption performance is strongly affected by feedstock and preparation conditions. Future studies should focus on real water matrices, low-concentration and mixed-PFAS systems, dynamic column operation, adsorbent regeneration, concentrate treatment, and life-cycle environmental impacts, thereby supporting efficient, economical, and sustainable control of PFAS-contaminated water.

     

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