Nanoplastics in aquatic environments: Origin, separation and characterization: Review

Tehnika Pub Date : 2023-01-01 DOI:10.5937/tehnika2301103m
D. Milojkov, Angelina Mitrović, Danijela Smiljanić, G. Jovanović, M. Sokić
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Abstract

Scientists discovered plastic in the early 1900s, but didn't realize the detrimental effects its fragmentation could have on the environment 100 years later. In particular, nanoplastics (NPs) particles ranging in size from 1 to 100 nm can cause major problems in the living world due to their high specific surface area for the adsorption other polluting substances from water, and their further bioaccumulation through the food chain. There is no distinctive method to identify, characterize, and quantify nanoplastics in aquatic environments. Although many of the methods developed to study microplastics are not directly applicable to nanoplastics, conventional methods of characterizing nanoplastics are usually tedious because they study individual nanoparticles in isolation. Since nanoplastics resulting from the decomposition of microplastics have different properties than engineering plastic nanoparticles, new techniques need to be developed to help us better understand the seriousness of the nanoplastic problem. Nanoplastic can be isolated from the water environment by a combination of filters and ultracentrifugation. A recent publications states that combining microscopy and spectroscopy, supported by chemometric techniques, will alow a better understand he behavior of nanoplastic particles in the environment and organisms. High hopes are placed on microscopies combined with neural networks for the quantification and characterization of nanoplastics in complex systems. This article describes the degradation pathways of plastics and the formation of nanoplastics in aquatic environments, and possible methods for separation and characterization of nanoplastics in relation to recent publications.
水生环境中的纳米塑料:起源、分离和表征综述
科学家在20世纪初发现了塑料,但没有意识到塑料碎片在100年后可能对环境造成的有害影响。特别是,纳米塑料(NPs)颗粒的大小在1到100纳米之间,由于其从水中吸附其他污染物质的高比表面积,以及它们通过食物链进一步的生物积累,可能会给生物世界带来重大问题。没有独特的方法来识别、表征和量化水生环境中的纳米塑料。虽然许多研究微塑料的方法并不直接适用于纳米塑料,但表征纳米塑料的传统方法通常是繁琐的,因为它们是孤立地研究单个纳米颗粒。由于由微塑料分解产生的纳米塑料与工程塑料纳米颗粒具有不同的性能,因此需要开发新技术来帮助我们更好地了解纳米塑料问题的严重性。纳米塑料可以通过过滤器和超离心的组合从水环境中分离出来。最近的一份出版物指出,结合显微镜和光谱学,在化学计量技术的支持下,将使人们更好地了解纳米塑料颗粒在环境和生物中的行为。人们寄予厚望的是显微镜结合神经网络在复杂系统中量化和表征纳米塑料。本文介绍了塑料的降解途径和纳米塑料在水生环境中的形成,以及最近发表的纳米塑料分离和表征的可能方法。
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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