Mineral-Armored Structure Enhanced the Stability of Polyethylene Microplastics Rather Than Polylactic Acid Microplastics: A Long-Term Natural Aging Study

微塑料 聚乳酸 自然(考古学) 环境科学 期限(时间) 聚乙烯 矿物 环境化学 化学 地质学 聚合物 量子力学 物理 古生物学 有机化学
作者
Jia Li,Zehua Xu,Liming Dai,Min Cui,Yajun Chen,Yang Song,Shengsen Wang
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:59 (35): 18948-18956 被引量:7
标识
DOI:10.1021/acs.est.5c09806
摘要

The aging of microplastics (MPs) depends on their surrounding environment and has significant implications for their environmental behavior and ecological risks. However, there are limited data on the long-term aging of MPs in different natural environments. The natural aging characteristics of polyethylene MPs (PE-MPs) and polylactic acid MPs (PLA-MPs) exposed to air, soil surface, and subsurface conditions for 6 and 12 months, respectively, were evaluated. The results showed that PE-MPs and PLA-MPs exhibited distinct aging characteristics under identical conditions. Photolysis represents the primary aging mechanism for PE-MPs, and prolonged solar radiation significantly reduces their stability ( p < 0.05). Notably, soil minerals (e.g., Illite and quartz) formed armor-like coatings encapsulating PE-MP surfaces through chemical interfacial interactions (C–Si–O, Si–O–C, and Al–O–C)─a novel mechanism enhancing PE stability in soils. However, the stable interfacial adhesion between soil minerals and PLA-MPs is minimal. Microbial degradation as the primary aging mechanism renders PLA-MPs in soil more susceptible to aging compared to those in air, consequently exhibiting lower stability. This study highlights the mineral-mediated aging of MPs in soil and demonstrates how mineral coatings enhance the stability of PE-MPs. This underscores the necessity of incorporating mineral-mediated aging processes into MP risk assessments for soil ecosystems.
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