微塑料分离技术对海水样品的效果:高密度聚乙烯检测精度。

IF 2.1 4区 生物学 Q2 BIOLOGY
Biological Bulletin Pub Date : 2021-02-01 Epub Date: 2021-02-02 DOI:10.1086/710755
Michaela E Miller, Cherie A Motti, Patricia Menendez, Frederieke J Kroon
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引用次数: 9

摘要

微塑料污染海洋环境已在全球范围内得到广泛报道。它的普遍性突出了准确量化的重要性,以便在不同环境矩阵内部和之间实现可比性。然而,不同方法从环境样品基质中分离微塑料的潜在功效很少得到验证。在本研究中,我们以高密度聚乙烯为模型微塑料,考察了四种常用的海水样品分离方法(即目测分离、密度浮选、酸消化和酶消化)的效果。对于每种分离方法,评估了样品基质的澄清效率、高密度聚乙烯微粒的加标回收率以及高密度聚乙烯化学和物理特性的潜在变化。在所有方法中,高密度聚乙烯微粒的回收率都很高(>83%)。浓硝酸对去除海水样品中的生物物质最为有效。在回收的高密度聚乙烯微粒中,没有观察到由于分离处理而产生的明显的物理(即长度或颜色)或化学变化,只有一个例外是酶消化模糊了高密度聚乙烯的聚合物识别。我们的研究结果强调需要确定和报告不同聚合物类型和特定环境样品基质分离方法的准确性,以确保海洋微塑料污染的准确定量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficacy of Microplastic Separation Techniques on Seawater Samples: Testing Accuracy Using High-Density Polyethylene.

AbstractMicroplastic contamination of the marine environment has been reported globally. Its pervasiveness has highlighted the importance of accurate quantification to enable comparability within and between different environmental matrices. The potential efficacy of different methods to separate microplastics from their environmental sample matrix, however, is rarely validated. In this study, we examine the effects of four commonly used separation methods for seawater samples, namely, visual separation, density flotation, acidic digestion, and enzymatic digestion, using high-density polyethylene as our model microplastic. For each separation method, clarification efficiencies of the sample matrix, spiked recovery of high-density polyethylene microparticles, and potential changes in the chemical and physical characteristics of high-density polyethylene were assessed. High, albeit variable, recovery rates (>83%) of high-density polyethylene microparticles were achieved across all methods. Concentrated nitric acid was most effective at eliminating biological material from seawater samples. No apparent physical (i.e., length or color) or chemical changes due to separation treatments were observed in recovered high-density polyethylene microparticles, with the one exception that enzymatic digestion obscured polymer identification of high-density polyethylene. Our findings highlight the need to determine and report on the accuracy of separation methods for different polymer types and specific environmental sample matrices to ensure accurate quantification of marine microplastic contamination.

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来源期刊
Biological Bulletin
Biological Bulletin 生物-海洋与淡水生物学
CiteScore
3.30
自引率
6.20%
发文量
47
审稿时长
6-12 weeks
期刊介绍: The Biological Bulletin disseminates novel scientific results in broadly related fields of biology in keeping with more than 100 years of a tradition of excellence. The Bulletin publishes outstanding original research with an overarching goal of explaining how organisms develop, function, and evolve in their natural environments. To that end, the journal publishes papers in the fields of Neurobiology and Behavior, Physiology and Biomechanics, Ecology and Evolution, Development and Reproduction, Cell Biology, Symbiosis and Systematics. The Bulletin emphasizes basic research on marine model systems but includes articles of an interdisciplinary nature when appropriate.
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