微塑料污染土壤中甲氧苄啶的吸附-迁移

Adsorption and Migration Behavior of Antibiotic in Microplastic-Contaminated Soil

  • 摘要:
    目的 本研究目的是明确微塑料在土壤抗生素环境行为中的作用,重点揭示微塑料对土壤中抗生素吸附与迁移行为的影响机制。
    方法 以聚苯乙烯(PS)微塑料、聚酰胺(PA)微塑料和典型抗生素甲氧苄啶(TMP)为研究对象,采用微观成像和光谱分析技术联用,表征分析两种微塑料的理化性质;通过土壤吸附实验和土柱实验研究其对土壤中TMP吸附和迁移行为的影响;基于溶质运移模型分析相关影响机制。
    结果 PA微塑料粗糙的表面结构和特有的酰胺基使其对TMP具有较强的亲和力,进入土壤后会提高土壤对TMP的吸附量;而PS微塑料对TMP的亲和力较低,进入土壤后引发稀释效应降低土壤对TMP的吸附量;PS微塑料通过堵塞土壤孔隙抑制TMP的迁移,而PA微塑料则通过强化吸附和减小土壤孔隙两种作用协同抑制TMP的迁移。
    结论 PS和PA微塑料在土壤中通过不同机制影响抗生素的吸附和迁移行为,为评估和控制微塑料-抗生素的复合毒性效应及其环境风险提供科学依据。

     

    Abstract:
    Objective The aims were to clarify the role of microplastics (MPs) in the environmental behavior of antibiotics, and to elucidate the influence mechanisms of MPs on the adsorption and migration behaviors of antibiotics in soil.
    Method The polyamide MPs (PA-MPs) and polystyrene MPs (PS-MPs) along with the typical antibiotic trimethoprim TMP were selected as research subjects. The physicochemical properties of the two MPs were characterized using a combined approach of microscopic imaging and spectroscopic analysis techniques. Batch experiments and soil column experiments were conducted to examine their impacts on the adsorption and migration behavior of TMP in soil. Additionally, a solute transport model was employed to analyze the underlying mechanisms of these effects.
    Result PA-MPs had a rougher surface and contain oxygen-containing functional groups, thereby providing more sorption sites for TMP. Consequently, PA-MPs exhibited significant TMP affinity, which resulted in enhanced TMP adsorption capacity upon introduction into soil. Conversely, PS-MPs exhibited a low affinity for TMP and caused a dilution effect upon introduction into the soil, thereby reduced the soil's capacity to adsorb TMP. The reduction of soil porosity was the primary mechanism through which PS-MPs inhibit TMP migration in soil column. In contrast, PA-MPs exerted a stronger inhibitory effect on TMP transport compared to PS-MPs by the synergistic effects of enhanced adsorption and reduced soil porosity.
    Conclusion The results have confirmed that PA and PS microplastics in soil affect the adsorption and transport behavior of antibiotics through different mechanisms, which provides a scientific basis for assessing and controlling the combined toxic effects and environmental risks of MP-antibiotic co-pollution.

     

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