Photo-induced degradation of single-use polyethylene terephthalate (PET) microplastics under laboratory and outdoor environmental conditions.

IF 3.6 4区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES
Zachery A Kasuske, Kailash Arole, Micah J Green, Todd A Anderson, Jaclyn E Cañas-Carrell
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Abstract

There is a lack of knowledge regarding the mechanisms that induce microplastic fragmentation and degradation within the environment. This research aimed to quantify the combined degradative effects that mechanical abrasion in conjunction with photo-oxidation and hydrolysis, have on polyethylene terephthalate (PET) microplastics. To accomplish this, common routes of degradation were evaluated. Degradation was assessed using three indices indicative of polymer degradation: Carbonyl Index (CI), Carbon-to-Oxygen Index (COI), and Hydroxyl Index (HI). This study assessed the effects that mechanical abrasion (MA), photo-oxidation, and various simulated environmental conditions: aqueous (Aq), aqueous + ultraviolet (UV), and UV only within two distinct settings (lab vs outdoor) have on PET microplastic degradation. Photo-oxidation exposure across a 60-d period induced significant degradation on PET microplastics resulting in a 1-22% increase in carbonyl groups across all treatments except UV and Aq. + UV Chamber (MA). A 6-214% increase in hydroxyl groups across all treatments. A 1-10% decrease in carbon-to-oxygen groups in all treatments except the Chamber Aqueous and Outdoor UV (MA). Mechanical abrasion seemed to accelerate this degradation in combination with both UV and aqueous treatments. Using simulated environmental conditions to induce degradation upon PET microplastics, in both lab and simulated environmentally relevant settings, revealed that the combined effects of hydrolysis and photo-oxidation can accelerate the process, especially in conjunction with mechanical abrasion. The novel findings presented here provide insight into the complex relationship between various polymer degradation pathways and the effects that mechanical abrasion can have on them, while also providing additional data for an understudied yet prevalent plastic polymer.

在实验室和室外环境条件下光诱导降解一次性聚对苯二甲酸乙二醇酯(PET)微塑料。
在环境中诱导微塑料破碎和降解的机制缺乏知识。本研究旨在量化机械磨损结合光氧化和水解对聚对苯二甲酸乙二醇酯(PET)微塑料的综合降解效应。为了实现这一点,对常见的降解途径进行了评估。使用三个指标来评估聚合物降解:羰基指数(CI)、碳氧指数(COI)和羟基指数(HI)。本研究评估了机械磨损(MA)、光氧化和各种模拟环境条件:水(Aq)、水+紫外线(UV)和两种不同环境(实验室与室外)下的紫外线对PET微塑料降解的影响。60 d的光氧化暴露诱导PET微塑料的显著降解,导致除UV和Aq + UV室(MA)外的所有处理中羰基增加1-22%。在所有治疗中羟基增加了6-214%。除室内水溶液和室外紫外线(MA)外,所有处理的碳氧基团均减少1-10%。机械磨损似乎与紫外线和水处理相结合加速了这种降解。利用模拟环境条件诱导PET微塑料在实验室和模拟环境相关设置下的降解,揭示了水解和光氧化的联合作用可以加速这一过程,特别是在机械磨损的情况下。本文提出的新发现为各种聚合物降解途径之间的复杂关系以及机械磨损对它们的影响提供了深入的见解,同时也为尚未充分研究但普遍存在的塑料聚合物提供了额外的数据。
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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来源期刊
CiteScore
7.40
自引率
9.80%
发文量
265
审稿时长
3.4 months
期刊介绍: The Society of Environmental Toxicology and Chemistry (SETAC) publishes two journals: Environmental Toxicology and Chemistry (ET&C) and Integrated Environmental Assessment and Management (IEAM). Environmental Toxicology and Chemistry is dedicated to furthering scientific knowledge and disseminating information on environmental toxicology and chemistry, including the application of these sciences to risk assessment.[...] Environmental Toxicology and Chemistry is interdisciplinary in scope and integrates the fields of environmental toxicology; environmental, analytical, and molecular chemistry; ecology; physiology; biochemistry; microbiology; genetics; genomics; environmental engineering; chemical, environmental, and biological modeling; epidemiology; and earth sciences. ET&C seeks to publish papers describing original experimental or theoretical work that significantly advances understanding in the area of environmental toxicology, environmental chemistry and hazard/risk assessment. Emphasis is given to papers that enhance capabilities for the prediction, measurement, and assessment of the fate and effects of chemicals in the environment, rather than simply providing additional data. The scientific impact of papers is judged in terms of the breadth and depth of the findings and the expected influence on existing or future scientific practice. Methodological papers must make clear not only how the work differs from existing practice, but the significance of these differences to the field. Site-based research or monitoring must have regional or global implications beyond the particular site, such as evaluating processes, mechanisms, or theory under a natural environmental setting.
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