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聚集行为对磁性FeO纳米颗粒去除微塑料的影响。

Effect of aggregation behavior on microplastic removal by magnetic FeO nanoparticles.

作者信息

Yan Ruiqi, Lin Sen, Jiang Weinan, Yu Xia, Zhang Lei, Zhao Wentao, Sui Qian

机构信息

State Environmental Protection Key Laboratory of Environmental Risk Assessment and Control on Chemical Process, School of Resources and Environmental Engineering, East China University of Science and Technology, Shanghai 200237, China.

State Environmental Protection Key Laboratory of Environmental Risk Assessment and Control on Chemical Process, School of Resources and Environmental Engineering, East China University of Science and Technology, Shanghai 200237, China.

出版信息

Sci Total Environ. 2023 Nov 10;898:165431. doi: 10.1016/j.scitotenv.2023.165431. Epub 2023 Jul 15.

Abstract

Magnetic nanotechnologies have been shown to be an efficient approach to the reduction of microplastic (MP) pollution in aquatic environments. However, uncertainties remain regarding the relationship between particle stability and MP removal under varying water conditions, hindering the practical application of magnetic nanotechnologies for MP removal. Herein, the influence of particle aggregation behavior on nano-scale MP removal by FeO nanoparticles (FNPs) was investigated, by monitoring dynamic light scattering parameters and analyzing the microstructures of particle aggregates. Results showed that 83.1 %-92.9 % of MPs could be removed by FNPs within 1 h, and MP removal exhibited a high degree of Pearson correlation (R = 0.95; P = 0.04) with particle aggregation behavior mediated by the FNPs dosage. Furthermore, pH-dependent electrostatic interactions significantly influenced particle aggregation behavior and the removal of MPs. Under pH <6.7 conditions, electrostatic attraction between electropositive FNPs and electronegative MPs led to charge neutralization-induced aggregation and efficient removal MP performance. Under increasingly saline conditions, compression of the electrical double layer enhanced the self-aggregation behavior of MPs, weakening the electrostatic repulsion between FNPs and MPs under alkaline conditions. Therefore, salinity improved the MP removal efficiency, especially under alkaline conditions, with MP removal increasing from 4.47 % to 55.1 % when the mass fraction of NaCl was increased from 0 % to 1 %. These findings further our understanding of the effect of aggregation behavior on MP removal by FNPs and highlight the potential for magnetic nanotechnology application in the removal of nano-scale MPs from aquatic environments, while also providing valuable insights for the design of FNP-based materials.

摘要

磁性纳米技术已被证明是减少水生环境中微塑料(MP)污染的有效方法。然而,在不同水条件下,颗粒稳定性与MP去除之间的关系仍存在不确定性,这阻碍了磁性纳米技术在MP去除方面的实际应用。在此,通过监测动态光散射参数并分析颗粒聚集体的微观结构,研究了颗粒聚集行为对FeO纳米颗粒(FNP)去除纳米级MP的影响。结果表明,FNP在1小时内可去除83.1%-92.9%的MP,并且MP去除与由FNP剂量介导的颗粒聚集行为表现出高度的皮尔逊相关性(R = 0.95;P = 0.04)。此外,pH依赖性静电相互作用显著影响颗粒聚集行为和MP的去除。在pH <6.7条件下,带正电的FNP与带负电的MP之间的静电吸引导致电荷中和诱导的聚集和高效的MP去除性能。在盐度增加的条件下,双电层的压缩增强了MP的自聚集行为,削弱了碱性条件下FNP与MP之间的静电排斥。因此,盐度提高了MP去除效率,尤其是在碱性条件下,当NaCl的质量分数从0%增加到1%时,MP去除率从4.47%增加到55.1%。这些发现进一步加深了我们对聚集行为对FNP去除MP影响的理解,并突出了磁性纳米技术在从水生环境中去除纳米级MP方面的应用潜力,同时也为基于FNP的材料设计提供了有价值的见解。

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