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迈向拉曼自动化微塑料分析:颗粒黏附与滤膜抽样策略的发展。

Towards Raman Automation for Microplastics: Developing Strategies for Particle Adhesion and Filter Subsampling.

机构信息

Department of Ecology and Evolutionary Biology, University of Toronto, Toronto, Canada.

Department of Civil and Mineral Engineering, University of Toronto, Toronto, Canada.

出版信息

Appl Spectrosc. 2020 Sep;74(9):976-988. doi: 10.1177/0003702820922900. Epub 2020 Jun 30.

Abstract

Automation and subsampling have been proposed as solutions to reduce the time required to quantify and characterize microplastics in samples using spectroscopy. However, there are methodological dilemmas associated with automation that are preventing its widespread implementation including ensuring particles stay adhered to the filter during filter mapping and developing an appropriate subsampling strategy to reduce the time needed for analysis. We provide a solution to the particle adherence issue by applying Skin Tac, a non-polymeric permeable adhesive that allows microplastic particles to adhere to the filter without having their Raman signal masked by the adhesive. We also explore different subsampling strategies to help inform how to take a representative subsample. Based on the particle distributions observed on filters, we determined that assuming a homogenous particle distribution is inappropriate and can lead to over- and under-estimations of extrapolated particle counts. Instead, we provide recommendations for future studies that wish to subsample to increase the throughput of samples for spectroscopic analysis.

摘要

自动化和子采样已被提议作为解决方案,以减少使用光谱法定量和表征样品中微塑料所需的时间。然而,自动化存在一些方法上的困境,这阻碍了它的广泛实施,包括确保在过滤映射过程中颗粒始终附着在过滤器上,以及开发适当的子采样策略以减少分析所需的时间。我们通过应用 Skin Tac 来解决颗粒附着问题,Skin Tac 是一种非聚合的可渗透粘合剂,可让微塑料颗粒附着在过滤器上,而不会被粘合剂掩盖其拉曼信号。我们还探讨了不同的子采样策略,以帮助了解如何采取有代表性的子样本。根据过滤器上观察到的颗粒分布,我们确定假设颗粒分布均匀是不恰当的,并且可能导致对推断出的颗粒计数的过高和过低估计。相反,我们为希望进行子采样以增加光谱分析样品通量的未来研究提供了建议。

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