Marine Biodiversity and Environmental Assessment Research Center (BioEnv), Research Institute for Global Change (RIGC), Japan Agency for Marine-Earth Science and Technology (JAMSTEC), 2-15 Natsushima-cho, Yokosuka, Kanagawa 237-0061, Japan.
Super-cutting-edge Grand and Advanced Research (SUGAR) Program, Institute for Extra-cutting-edge Science and Technology Avant-garde Research (X-star), Japan Agency for Marine-Earth Science and Technology (JAMSTEC), 2-15 Natsushima-cho, Yokosuka, Kanagawa 237-0061, Japan.
Anal Methods. 2021 May 20;13(19):2215-2222. doi: 10.1039/d1ay00110h.
Hyperspectral data in the near infrared range were examined for nine common types of plastic particles of 1 mm and 100-500 μm sizes on dry and wet glass fiber filters. Weaker peak intensities were detected for small particles compared to large particles, and the reflectances were weaker at longer wavelengths when the particles were measured on a wet filter. These phenomena are explainable due to the effect of the correlation between the particle size and the absorption of infrared light by water. We constructed robust classification models that are capable of classifying polymer types, regardless of particle size or filter conditions (wet vs. dry), based on hyperspectral data for small particles measured on wet filters. Using the models, we also successfully classified the polymer type of polystyrene beads covered with microalgae, which simulates the natural conditions of microplastics in the ocean. This study suggests that hyperspectral imaging techniques with appropriate classification models allow the identification of microplastics without the time- and labor-consuming procedures of drying samples and removing biofilms, thus enabling more rapid analyses.
对直径为 1 毫米和 100-500μm 的九种常见类型的塑料颗粒在干燥和湿玻璃纤维滤纸上进行了近红外范围内的高光谱数据分析。与大颗粒相比,小颗粒的峰强度较弱,并且当在湿滤器上测量颗粒时,在较长波长处的反射率较弱。这些现象可以用颗粒尺寸与水对红外光的吸收之间的相关性的影响来解释。我们构建了强大的分类模型,这些模型能够基于在湿滤器上测量的小颗粒的高光谱数据,对聚合物类型进行分类,而不管颗粒尺寸或滤器条件(干燥与湿润)如何。使用这些模型,我们还成功地对覆盖有微藻的聚苯乙烯珠的聚合物类型进行了分类,这模拟了海洋中微塑料的自然条件。本研究表明,具有适当分类模型的高光谱成像技术可在不耗费时间和劳力对样品进行干燥和去除生物膜的情况下识别微塑料,从而实现更快速的分析。