Oßmann Barbara E, Sarau George, Schmitt Sebastian W, Holtmannspötter Heinrich, Christiansen Silke H, Dicke Wilhelm
Bavarian Food Safety Authority, Eggenreuther Weg 43, 91058, Erlangen, Germany.
Henriette Schmidt-Burkhardt Chair of Food Chemistry, Department of Chemistry and Pharmacy - Emil Fischer Center, University of Erlangen-Nuremberg, Schuhstraße 19, 91052, Erlangen, Germany.
Anal Bioanal Chem. 2017 Jun;409(16):4099-4109. doi: 10.1007/s00216-017-0358-y. Epub 2017 Apr 24.
When analysing microplastics in food, due to toxicological reasons it is important to achieve clear identification of particles down to a size of at least 1 μm. One reliable, optical analytical technique allowing this is micro-Raman spectroscopy. After isolation of particles via filtration, analysis is typically performed directly on the filter surface. In order to obtain high qualitative Raman spectra, the material of the membrane filters should not show any interference in terms of background and Raman signals during spectrum acquisition. To facilitate the usage of automatic particle detection, membrane filters should also show specific optical properties. In this work, beside eight different, commercially available membrane filters, three newly designed metal-coated polycarbonate membrane filters were tested to fulfil these requirements. We found that aluminium-coated polycarbonate membrane filters had ideal characteristics as a substrate for micro-Raman spectroscopy. Its spectrum shows no or minimal interference with particle spectra, depending on the laser wavelength. Furthermore, automatic particle detection can be applied when analysing the filter surface under dark-field illumination. With this new membrane filter, analytics free of interference of microplastics down to a size of 1 μm becomes possible. Thus, an important size class of these contaminants can now be visualized and spectrally identified. Graphical abstract A newly developed aluminium coated polycarbonate membrane filter enables automatic particle detection and generation of high qualitative Raman spectra allowing identification of small microplastics.
在分析食品中的微塑料时,出于毒理学原因,重要的是要能清晰鉴定出尺寸至少为1微米的颗粒。一种可靠的光学分析技术——显微拉曼光谱法可以做到这一点。通过过滤分离出颗粒后,通常直接在滤膜表面进行分析。为了获得高质量的拉曼光谱,在光谱采集过程中,膜滤器的材料在背景和拉曼信号方面不应有任何干扰。为便于使用自动颗粒检测,膜滤器还应具有特定的光学特性。在这项工作中,除了测试八种不同的市售膜滤器外,还对三种新设计的金属涂层聚碳酸酯膜滤器进行了测试,以满足这些要求。我们发现铝涂层聚碳酸酯膜滤器作为显微拉曼光谱的基底具有理想的特性。根据激光波长不同,其光谱对颗粒光谱的干扰很小或几乎没有干扰。此外,在暗场照明下分析滤膜表面时可应用自动颗粒检测。有了这种新型膜滤器,就可以对尺寸小至1微米的微塑料进行无干扰分析。因此,现在可以对这类重要尺寸级别的污染物进行可视化和光谱鉴定。图形摘要:一种新开发的铝涂层聚碳酸酯膜滤器能够实现自动颗粒检测并生成高质量的拉曼光谱,从而能够鉴定小尺寸的微塑料。