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利用自行搭建的显微拉曼光谱装置对水生环境中的微塑料进行可视化和表征。

Visualization and characterisation of microplastics in aquatic environment using a home-built micro-Raman spectroscopic set up.

作者信息

Sunil Megha, N Mithun, Charles Meril, Chidangil Santhosh, Kumar Satheesh, Lukose Jijo

机构信息

Centre of Excellence for Biophotonics, Department of Atomic and Molecular Physics, Manipal Academy of Higher Education, Manipal, Karnataka, 576104, India.

Centre of Excellence for Biophotonics, Department of Atomic and Molecular Physics, Manipal Academy of Higher Education, Manipal, Karnataka, 576104, India.

出版信息

J Environ Manage. 2024 Mar;354:120351. doi: 10.1016/j.jenvman.2024.120351. Epub 2024 Feb 20.

Abstract

Microplastics (MP) which are tiny plastic particles of sizes range from 1 μm (μm) to 5 mm (mm), have become a growing cause of concern due to their widespread presence in the environment and their potential impacts on ecosystems and human health. Marine organisms have the potential to consume microplastics, which could lead to physical injuries, blockages, or the transfer of harmful substances up the food chain. Humans may indirectly consume microplastics through contaminated seafood and water, although the complete scope of health risks is currently under investigation. An essential step in gaining a comprehensive understanding of microplastic pollution in waterbodies is the identification of microplastics, which is also crucial for further development of effective environmental regulations to address its adverse impacts. Majority of the researchers are accomplishing it globally using commercial platforms based on Raman spectroscopy. However, the development of indigenous Raman systems, which can enable microplastic identification, particularly in developing nations, is the need of the hour due to the outrageous cost of commercial platforms. In the current study, a custom-designed micro-Raman spectroscopy system was developed to detect and characterize microplastics from waterbodies. The developed system enabled visualization, size measurement and characterization of microplastics. Experimental parameters were fine-tuned, and a standardized Raman database was established for each type of plastic. This system exhibited high resolution which was capable of analysing microparticles of size up to 5 μm. Principal component analysis was carried out on the experimental Raman data, demonstrating good classification amongst different kinds of plastics. The performance of the developed system in analysing real samples was evaluated through experiments conducted on water samples obtained from the shore of Malpe Beach in Udupi district. The results revealed the presence of polyethylene and polyethylene terephthalate in the samples, along with the detection of pigments like copper phthalocyanine and indigo blue.

摘要

微塑料(MP)是指尺寸范围从1微米(μm)到5毫米(mm)的微小塑料颗粒,由于它们在环境中的广泛存在及其对生态系统和人类健康的潜在影响,已成为日益引起关注的问题。海洋生物有可能摄入微塑料,这可能导致身体受伤、堵塞或有害物质在食物链中的转移。人类可能通过受污染的海鲜和水间接摄入微塑料,尽管目前健康风险的完整范围仍在调查中。全面了解水体中微塑料污染的一个重要步骤是微塑料的识别,这对于进一步制定有效的环境法规以应对其不利影响也至关重要。全球大多数研究人员都在使用基于拉曼光谱的商业平台来完成这一工作。然而,由于商业平台成本过高,开发能够实现微塑料识别的本土拉曼系统迫在眉睫,尤其是在发展中国家。在本研究中,开发了一种定制设计的微拉曼光谱系统,用于检测和表征水体中的微塑料。所开发的系统能够实现微塑料的可视化、尺寸测量和表征。对实验参数进行了微调,并为每种类型的塑料建立了标准化的拉曼数据库。该系统具有高分辨率,能够分析尺寸达5μm的微粒。对实验拉曼数据进行了主成分分析,结果表明不同种类的塑料之间具有良好的分类效果。通过对从乌度皮区马尔佩海滩岸边采集的水样进行实验,评估了所开发系统在分析实际样品方面的性能。结果显示样品中存在聚乙烯和聚对苯二甲酸乙二酯,同时还检测到了铜酞菁和靛蓝等色素。

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