Modeling and tracing of polycarbonate (PC) degradation in soil microcosm with a PC microplastics quantification method based on pyrolysis GC–MS

IF 6.3 2区 化学 Q1 POLYMER SCIENCE Polymer Degradation and Stability Pub Date : 2024-07-06 DOI:10.1016/j.polymdegradstab.2024.110917
Chao-Fan Yin , Wen-Long Yue , Ning-Yi Zhou , Ying Xu
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Abstract

Understanding the migration and transformation of polycarbonate (PC) plastic wastes in the natural environment is crucial for assessing their environmental impact and bioremediation. In this study, PC plastic degradation was modeled and traced in soil microcosm by investigating physiochemical properties changes of PC, the formation of microplastics, and changes in soil microbial communities. Notably, PC microplastics quantification method was also successfully devised by pyrolysis gas chromatography mass spectrometry and also applied herein. Through gel permeation chromatography analysis, the molecular weight of the naturally aged PC film obviously reduced, whereas no change for unaged ones. After 12 months of soil burial, the surface corrosion and holes formation were emerged on the surfaces of both PC films in the non-sterilized soil harboring indigenous microorganisms by scanning electron microscope. The worsened thermal stability of both PC films in non-sterilized soil was demonstrated by thermogravimetric analysis. Meanwhile, the presence of increased hydroxyl group absorption and decreased carbonyl peak highlighted molecular chain breakage in both PC films by Fourier transform infrared spectroscopy. In particular, all the changes were more significant in aged PC than unaged ones. Furthermore, the increase of quantified PC microplastics on the surface of PC film in the non-sterilized soil accompanied the decreasing of microbial diversity and the enrichment of potential functional microorganisms. These findings revealed that the combination of natural aging and indigenous microbes exhibited a noticeable performance in PC plastics degradation in soil microcosm, providing new insights into the degradation mechanism of PC plastic wastes in the natural environment.

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利用基于热解气相色谱-质谱的聚碳酸酯(PC)微塑料定量方法,建立聚碳酸酯(PC)在土壤微宇宙中降解的模型并进行追踪
了解聚碳酸酯(PC)塑料废物在自然环境中的迁移和转化对于评估其环境影响和生物修复至关重要。本研究通过研究聚碳酸酯的理化性质变化、微塑料的形成以及土壤微生物群落的变化,模拟并追踪了聚碳酸酯塑料在土壤微生态系统中的降解过程。值得注意的是,该研究还成功地利用热解气相色谱质谱法设计了 PC 微塑料的定量方法。通过凝胶渗透色谱分析,自然老化的 PC 薄膜的分子量明显降低,而未老化的则没有变化。在土壤中埋藏 12 个月后,通过扫描电子显微镜观察,两种 PC 薄膜在未经灭菌的土壤中都出现了表面腐蚀和孔洞形成,并滋生了本地微生物。热重分析表明,这两种 PC 薄膜在未消毒土壤中的热稳定性都有所下降。同时,通过傅立叶变换红外光谱分析,羟基吸收增加和羰基峰值降低凸显了这两种 PC 薄膜的分子链断裂。特别是,与未老化的 PC 相比,老化 PC 的所有变化都更为显著。此外,在未经消毒的土壤中,PC 薄膜表面量化的 PC 微塑料的增加伴随着微生物多样性的减少和潜在功能微生物的富集。这些研究结果表明,自然老化与本地微生物的结合在土壤微生态环境中的 PC 塑料降解中表现出了明显的效果,为自然环境中 PC 塑料废弃物的降解机制提供了新的见解。
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来源期刊
Polymer Degradation and Stability
Polymer Degradation and Stability 化学-高分子科学
CiteScore
10.10
自引率
10.20%
发文量
325
审稿时长
23 days
期刊介绍: Polymer Degradation and Stability deals with the degradation reactions and their control which are a major preoccupation of practitioners of the many and diverse aspects of modern polymer technology. Deteriorative reactions occur during processing, when polymers are subjected to heat, oxygen and mechanical stress, and during the useful life of the materials when oxygen and sunlight are the most important degradative agencies. In more specialised applications, degradation may be induced by high energy radiation, ozone, atmospheric pollutants, mechanical stress, biological action, hydrolysis and many other influences. The mechanisms of these reactions and stabilisation processes must be understood if the technology and application of polymers are to continue to advance. The reporting of investigations of this kind is therefore a major function of this journal. However there are also new developments in polymer technology in which degradation processes find positive applications. For example, photodegradable plastics are now available, the recycling of polymeric products will become increasingly important, degradation and combustion studies are involved in the definition of the fire hazards which are associated with polymeric materials and the microelectronics industry is vitally dependent upon polymer degradation in the manufacture of its circuitry. Polymer properties may also be improved by processes like curing and grafting, the chemistry of which can be closely related to that which causes physical deterioration in other circumstances.
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