Department of Environment, Faculty of Natural Resources, Bandar Abbas Branch, Islamic Azad University, Bandar Abbas, Iran.
Department of Chemistry, Bandar Abbas Branch, Islamic Azad University, Bandar Abbas, 7915893144, Iran.
Environ Monit Assess. 2023 Aug 2;195(9):1017. doi: 10.1007/s10661-023-11640-9.
The global attention on microplastics in soils, particularly in agricultural soils, has been growing. However, there is a need to investigate the impact of microplastics on the ability of agricultural soils to add and remove pollutants. To address this, a series of batch experiments were conducted to examine how high-density polyethylene microplastics affect the adsorption and desorption of lead in a field soil under different conditions. The equilibrium for both lead adsorption and desorption, with and without microplastics, was reached within 120 min. The adsorption kinetics of lead followed the quasi-second-order model, and the Langmuir model provided a more accurate fit for the adsorption isotherm compared to the Freundlich model. Generally, the addition of microplastics decreased lead adsorption but increased its excretion. The effects varied depending on the dosage of microplastics, particle size, and solution pH. Higher microplastic dosage and larger particle size resulted in a more pronounced reduction in lead adsorption and an increase in lead excretion, although these effects also depended on the solution pH. Analysis using energy-dispersive X-ray spectroscopy confirmed the adsorption lead on the surface of microplastics. Both types of microplastic samples, before and after lead adsorption, exhibited similar X-ray diffraction patterns, indicating that the microplastics maintained their high crystallinity and did not undergo any new crystalline phase formation. Consequently, the introduction of microplastics into the soil may enhance the mobility of lead by reducing the soil's adsorption capacity, thereby posing greater risks to the agricultural ecosystem.
全球对土壤中微塑料的关注,特别是农业土壤中的微塑料,一直在增加。然而,有必要研究微塑料对农业土壤添加和去除污染物能力的影响。为了解决这个问题,进行了一系列批实验,以研究高密度聚乙烯微塑料如何影响不同条件下田间土壤中铅的吸附和解吸。在没有和有微塑料的情况下,铅的吸附和解吸的平衡在 120 分钟内达到。铅的吸附动力学符合准二级模型,与 Freundlich 模型相比,Langmuir 模型更能准确拟合吸附等温线。一般来说,添加微塑料会降低铅的吸附,但会增加其排泄。这些影响取决于微塑料的用量、粒径和溶液 pH 值。较高的微塑料用量和较大的粒径导致铅的吸附减少和排泄增加更为明显,尽管这些影响也取决于溶液 pH 值。使用能量色散 X 射线光谱分析证实了微塑料表面对铅的吸附。吸附铅前后的两种类型的微塑料样品都表现出相似的 X 射线衍射图谱,表明微塑料保持了其高结晶度,没有发生任何新的结晶相形成。因此,微塑料的引入可能会通过降低土壤的吸附能力来增强铅的迁移性,从而对农业生态系统构成更大的风险。