Neuper Christian, Šimić Marko, Lockwood Thomas E, Gonzalez de Vega Raquel, Hohenester Ulrich, Fitzek Harald, Schlatt Lukas, Hill Christian, Clases David
Brave Analytics GmbH, 8010 Graz, Austria.
Graz Centre for Electron Microscopy, 8010 Graz, Austria.
Anal Chem. 2024 May 28;96(21):8291-8299. doi: 10.1021/acs.analchem.3c04657. Epub 2024 May 14.
Nanoparticles are produced at accelerating rates, are increasingly integrated into scientific and industrial applications, and are widely discharged into the environment. Analytical techniques are required to characterize parameters such as particle number concentrations, mass and size distributions, molecular and elemental compositions, and particle stability. This is not only relevant to investigate their utility for various industrial or medical applications and for controlling the manufacturing processes but also to assess toxicity and environmental fate. Different analytical strategies aim to characterize certain facets of particles but are difficult to combine to retrieve relevant parameters coherently and to provide a more comprehensive picture. In this work, we demonstrate the first online hyphenation of optofluidic force induction (OF2i) with Raman spectroscopy and inductively coupled plasma-time-of-flight-mass spectrometry (ICP-TOFMS) to harness their complementary technology-specific advantages and to promote comprehensive particle characterizations. We optically trapped individual particles on a weakly focused vortex laser beam by aligning a microfluidic flow antiparallelly to the laser propagation direction. The position of particles in this optical trap depended on the hydrodynamic diameter and therefore enabled size calibration as well as matrix elimination. Additionally, laser light scattered on particles was analyzed in a single particle (SP) Raman spectroscopy setup for the identification of particulate species and phases. Finally, particles were characterized regarding elemental composition and their distributions in mass and size using SP ICP-TOFMS. In a proof of concept, we analyzed polystyrene-based microplastic and TiO nanoparticles and demonstrated the opportunities provided through the coupling of OF2i with SP Raman and SP ICP-TOFMS.
纳米颗粒的产量正在加速增长,越来越多地融入科学和工业应用中,并广泛排放到环境中。需要分析技术来表征诸如颗粒数浓度、质量和尺寸分布、分子和元素组成以及颗粒稳定性等参数。这不仅与研究它们在各种工业或医学应用中的效用以及控制制造过程有关,还与评估毒性和环境归宿有关。不同的分析策略旨在表征颗粒的某些方面,但难以结合起来连贯地获取相关参数并提供更全面的情况。在这项工作中,我们展示了光流体力诱导(OF2i)与拉曼光谱和电感耦合等离子体飞行时间质谱(ICP-TOFMS)的首次在线联用,以利用它们互补的技术特定优势并促进全面的颗粒表征。我们通过使微流体流与激光传播方向反平行排列,在弱聚焦涡旋激光束上光学捕获单个颗粒。颗粒在该光学阱中的位置取决于流体动力学直径,因此能够进行尺寸校准以及基质消除。此外,在单颗粒(SP)拉曼光谱装置中分析颗粒上散射的激光,以识别颗粒种类和相。最后,使用SP ICP-TOFMS对颗粒的元素组成及其质量和尺寸分布进行表征。在概念验证中,我们分析了基于聚苯乙烯的微塑料和TiO纳米颗粒,并展示了OF2i与SP拉曼光谱和SP ICP-TOFMS联用所带来的机会。