Feng Jia, Dong Yongzhen, Li Hui, Tu Jia, Chen Yiping
State Key Laboratory of Marine Food Processing and Safety Control, Dalian Polytechnic University, Dalian, Liaoning 116034, China; Academy of Food Interdisciplinary Science, School of Food Science and Technology, Dalian Polytechnic University, Dalian, Liaoning 116034, China; Dalian Jinshiwan Laboratory, Dalian, Liaoning 116034, China.
State Key Laboratory of Marine Food Processing and Safety Control, Dalian Polytechnic University, Dalian, Liaoning 116034, China; Academy of Food Interdisciplinary Science, School of Food Science and Technology, Dalian Polytechnic University, Dalian, Liaoning 116034, China.
J Hazard Mater. 2025 Jun 23;495:139040. doi: 10.1016/j.jhazmat.2025.139040.
Micro/nanoplastics have raised significant concerns due to their intrinsic toxicity and synergistic effects with co-existing pollutants, posing substantial risks to environmental ecosystems and human health. Although metal-organic frameworks (MOFs) demonstrate promising potential as efficient adsorbents for microplastic removal, the structure-activity relationships governing their adsorption mechanisms remain poorly understood. In this study, engineered magnetic MOFs materials (FeO@carboxymethyl-cellulose(CMC)-MOFs) were designed and synthesized to adsorb micro/nanoplastics. The adsorption behavior of five FeO@CMC-MOFs composites toward micro/nanoplastics was systematically investigated, with particular emphasis on clarifying structure-property correlations. Furthermore, starting from the structural differences, the adsorption mechanism was systematically analyzed by physicochemical characterization, adsorption kinetics and isotherms, and density functional theory. Results showed that FeO@CMC-MIL-101-NH demonstrated superior adsorption performance for polystyrene (PS) mainly through van der Waals interactions. Under optimal conditions, FeO@CMC-MIL-101-NH enabled adsorbing 98.0 % and 245.1 mg/g PS, the maximum adsorption amount was 1923 mg/g based on Langmuir isotherm model. And it remained > 89.0 % efficiency after five cycles. As well as it showed satisfactory adsorption performance for other types of microplastics such as (polypropylene and polyethylene) with different shapes, micro/nano-size, and chargeability (>250 mg/g). Moreover, FeO@CMC-MIL-101-NH can effectively remove > 81.0 % micro/nanoplastics in beverages. The developed engineered magnetic MOFs material has excellent adsorption performance, efficiency and cost-effectiveness, possessing great potential for the removal of micro/nanoplastics in environment and food systems.
微塑料/纳米塑料因其内在毒性以及与共存污染物的协同效应而引发了重大关注,对环境生态系统和人类健康构成了重大风险。尽管金属有机框架材料(MOFs)作为去除微塑料的高效吸附剂显示出了广阔的潜力,但其吸附机制的构效关系仍知之甚少。在本研究中,设计并合成了工程化磁性MOFs材料(FeO@羧甲基纤维素(CMC)-MOFs)用于吸附微塑料/纳米塑料。系统研究了五种FeO@CMC-MOFs复合材料对微塑料/纳米塑料的吸附行为,特别强调阐明结构-性能相关性。此外,从结构差异出发,通过物理化学表征、吸附动力学和等温线以及密度泛函理论对吸附机制进行了系统分析。结果表明,FeO@CMC-MIL-101-NH对聚苯乙烯(PS)表现出优异的吸附性能,主要通过范德华相互作用。在最佳条件下,FeO@CMC-MIL-101-NH能够吸附98.0%的PS,吸附量为245.1 mg/g,基于朗缪尔等温线模型的最大吸附量为1923 mg/g。并且在五个循环后仍保持>89.0%的效率。此外,它对其他类型的微塑料,如不同形状、微/纳米尺寸和带电性的聚丙烯和聚乙烯,也表现出令人满意的吸附性能(>250 mg/g)。此外,FeO@CMC-MIL-101-NH能够有效去除饮料中>81.0%的微塑料/纳米塑料。所开发的工程化磁性MOFs材料具有优异的吸附性能、效率和成本效益,在去除环境和食品系统中的微塑料方面具有巨大潜力。