太阳之后:紫外线和土壤风化塑料表面化学成分的纳米级比较。

Microplastics and nanoplastics Pub Date : 2023-01-01 Epub Date: 2023-08-03 DOI:10.1186/s43591-023-00066-2
Alexandra Foetisch, Montserrat Filella, Benjamin Watts, Maeva Bragoni, Moritz Bigalke
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摘要

一旦排放到环境中,宏观(MaP)、微观(MP)和纳米塑料(NP)就会暴露在环境风化中。然而,土壤环境中发生的生物地球化学风化因子的影响尚不清楚。由于MP和NP的运输、命运和毒性直接取决于它们的表面性质,因此表征它们在土壤中的转化,以更好地预测它们在这种环境中的影响和相互作用至关重要。在这里,我们使用扫描透射x射线显微光谱来表征从土壤样品中提取的环境塑料碎片表面变化的深度剖面。还进行了土壤和紫外线辐射的控制风化实验,以研究这些风化因素对聚合物表面蚀变的单独影响。结果显示,在土壤中自然风化的PS、PET和PP环境塑料碎片中,风化表面的深度在1µm至100 nm之间。此外,在PS碎片上观察到了表面碎裂的初始步骤,从而深入了解了导致MP和NP在土壤中释放的因素和过程。环境、土壤培育(1年)和紫外线风化样品的比较表明,这些处理导致了不同的表面化学修饰。虽然环境样品显示出涉及氧化过程的蚀变迹象,但紫外线风化样品在表面没有显示出氧化迹象,只是峰值强度降低(表明化学C键的数量减少)。样品在土壤中培养一年后,没有观察到明显的老化效应,这表明聚合物在土壤中的老化可能很慢。补充信息:在线版本包含补充材料,可访问10.1186/s43591-023-00066-2。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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After the sun: a nanoscale comparison of the surface chemical composition of UV and soil weathered plastics.

Once emitted into the environment, macro- (MaP), micro- (MP) and nanoplastics (NP) are exposed to environmental weathering. Yet, the effects of biogeochemical weathering factors occurring in the soil environment are unknown. As the transport, fate, and toxicity of MP and NP depend directly on their surface properties, it is crucial to characterize their transformation in soils to better predict their impact and interactions in this environment. Here, we used scanning transmission x-ray micro spectroscopy to characterize depth profiles of the surface alteration of environmental plastic debris retrieved from soil samples. Controlled weathering experiments in soil and with UV radiation were also performed to investigate the individual effect of these weathering factors on polymer surface alteration. The results revealed a weathered surface on a depth varying between 1 µm and 100 nm in PS, PET and PP environmental plastic fragments naturally weathered in soil. Moreover, the initial step of surface fragmentation was observed on a PS fragment, providing an insight on the factors and processes leading to the release of MP and NP in soils. The comparison of environmental, soil incubated (for 1 year) and UV weathered samples showed that the treatments led to different surface chemical modifications. While the environmental samples showed evidence of alteration involving oxidation processes, the UV weathered samples did not reveal oxidation signs at the surface but only decrease in peak intensities (indicating decrease of the number of chemical C bonds). After a one-year incubation of samples in soil no clear aging effects were observed, indicating that the aging of polymers can be slow in soils.

Supplementary information: The online version contains supplementary material available at 10.1186/s43591-023-00066-2.

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