[Effect of Ageing on the Adsorption of Triclosan by Microplastics of Different Types and Particle Sizes].

微塑料 吸附 粒径 粒子(生态学) 化学工程 化学 聚氯乙烯 单层 表面粗糙度 三氯生 材料科学 邻苯二甲酸 比表面积 老化 双酚A 表面光洁度 聚乳酸 增塑剂 聚合物 聚碳酸酯 色谱法 氧气 聚对苯二甲酸丁二醇酯 复合材料
作者
Qing-Hua Li,Xian Yuan,Jian-Chang Liu,Xiao-Fang Shen
出处
期刊:PubMed [National Institutes of Health]
卷期号:47 (4): 2767-2776
标识
DOI:10.13227/j.hjkx.202502179
摘要

In order to investigate the effect of aging on the adsorption of triclosan (TCS) by microplastics (MPs) of different types and particle sizes, the physicochemical properties of polyamide (PA), polybutylene terephthalate (PBT), polylactic acid (PLA), and polyvinyl chloride (PVC) with particle sizes of 50 μm and 200 μm, as well as their adsorption of TCS, were analytically determined under aging at 0, 30, and 90 d. The results showed that the surface roughness of MPs increased significantly. The results showed that aging significantly increased the surface roughness of the MPs. After 90 d of aging, the surface oxygen percentage of all MPs except PVC50 increased compared with that before aging, with the increase being more significant for the small-sized MPs. Further, the hydrophilicity of PBT showed a tendency of increasing and then decreasing with aging time, but the hydrophilicity of the rest of the MPs was enhanced with the increase in aging time. At the same aging level, the adsorption property of PA was stronger than that of other MPs. At 30 d of aging, the adsorption property of MPs on TCS was increased compared with that before aging. However, after 90 d of aging, the adsorption property of PBT and PLA showed a decreasing trend compared with that at 30 d of aging. MPs with smaller particle size had higher adsorption capacity due to more available adsorption sites, while the growth rate of adsorption of larger particle size PA, PLA, and PVC was higher than that of smaller particle size after aging compared with that before aging, whereas PBT had the opposite trend. The study confirms that material properties, surface functional group evolution, and hydrophilic interaction-dominated adsorption mechanism jointly affect the MPs-TCS interaction, and the results provide theoretical support for the risk assessment of MPs-TCS composite contamination.

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