Adolphe Merkle Institute, University of Fribourg, Chemin des Verdiers 4, 1700, Fribourg, Switzerland.
Adolphe Merkle Institute, University of Fribourg, Chemin des Verdiers 4, 1700, Fribourg, Switzerland; Water Quality Group, International Iberian Nanotechnology Laboratory (INL), A v. Mestre José Veiga s/n, 4715-330, Braga, Portugal.
Chemosphere. 2022 Apr;293:133514. doi: 10.1016/j.chemosphere.2022.133514. Epub 2022 Jan 8.
Plastic particle pollution has been shown to be almost completely ubiquitous within our surrounding environment. This ubiquity in combination with a variety of unique properties (e.g. density, hydrophobicity, surface functionalization, particle shape and size, transition temperatures, and mechanical properties) and the ever-increasing levels of plastic production and use has begun to garner heightened levels of interest within the scientific community. However, as a result of these properties, plastic particles are often reported to be challenging to study in complex (i.e. real) environments. Therefore, this review aims to summarize research generated on multiple facets of the micro- and nanoplastics field; ranging from size and shape definitions to detection and characterization techniques to generating reference particles; in order to provide a more complete understanding of the current strategies for the analysis of plastic particles. This information is then used to provide generalized recommendations for researchers to consider as they attempt to study plastics in analytically complex environments; including method validation using reference particles obtained via the presented creation methods, encouraging efforts towards method standardization through the reporting of all technical details utilized in a study, and providing analytical pathway recommendations depending upon the exact knowledge desired and samples being studied.
塑料颗粒污染已被证明在我们周围的环境中几乎无处不在。这种普遍性,再加上各种独特的特性(例如密度、疏水性、表面功能化、颗粒形状和大小、转变温度和机械性能),以及塑料生产和使用水平的不断提高,开始在科学界引起了更高的兴趣。然而,由于这些特性,塑料颗粒在复杂(即真实)环境中往往难以研究。因此,本综述旨在总结微塑料和纳米塑料领域多个方面的研究成果;从大小和形状的定义到检测和特征描述技术,再到参考颗粒的生成;以便更全面地了解目前分析塑料颗粒的策略。然后,利用这些信息为研究人员在分析复杂环境中的塑料时提供一般性建议;包括使用通过所提出的生成方法获得的参考颗粒进行方法验证,鼓励通过报告研究中使用的所有技术细节来努力实现方法标准化,并根据所需的确切知识和正在研究的样本提供分析途径建议。