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利用纳米直接感应加热质谱仪推进动态空气中纳米级颗粒科学研究。

Advancing the science of dynamic airborne nanosized particles using Nano-DIHM.

作者信息

Pal Devendra, Nazarenko Yevgen, Preston Thomas C, Ariya Parisa A

机构信息

Department of Atmospheric and Oceanic Sciences, McGill University, 805 Sherbrooke Street West, Montreal, QC, H3A 0B9, Canada.

Department of Chemistry, McGill University, 801 Sherbrooke Street West, Montréal, QC, H3A 2K6, Canada.

出版信息

Commun Chem. 2021 Dec 8;4(1):170. doi: 10.1038/s42004-021-00609-9.

Abstract

In situ and real-time characterization of aerosols is vital to several fundamental and applied research domains including atmospheric chemistry, air quality monitoring, or climate change studies. To date, digital holographic microscopy is commonly used to characterize dynamic nanosized particles, but optical traps are required. In this study, a novel integrated digital in-line holographic microscope coupled with a flow tube (Nano-DIHM) is demonstrated to characterize particle phase, shape, morphology, 4D dynamic trajectories, and 3D dimensions of airborne particles ranging from the nanoscale to the microscale. We demonstrate the application of Nano-DIHM for nanosized particles (≤200 nm) in dynamic systems without optical traps. The Nano-DIHM allows observation of moving particles in 3D space and simultaneous measurement of each particle's three dimensions. As a proof of concept, we report the real-time observation of 100 nm and 200 nm particles, i.e. polystyrene latex spheres and the mixture of metal oxide nanoparticles, in air and aqueous/solid/heterogeneous phases in stationary and dynamic modes. Our observations are validated by high-resolution scanning/transmission electron microscopy and aerosol sizers. The complete automation of software (Octopus/Stingray) with Nano-DIHM permits the reconstruction of thousands of holograms within an hour with 62.5 millisecond time resolution for each hologram, allowing to explore the complex physical and chemical processes of aerosols.

摘要

气溶胶的原位和实时表征对于包括大气化学、空气质量监测或气候变化研究在内的几个基础和应用研究领域至关重要。迄今为止,数字全息显微镜通常用于表征动态纳米级颗粒,但需要光阱。在本研究中,展示了一种新型的集成数字同轴全息显微镜与流动管相结合(纳米数字全息显微镜),用于表征从纳米级到微米级的空气中颗粒的颗粒相、形状、形态、4D动态轨迹和3D尺寸。我们展示了纳米数字全息显微镜在无光学阱的动态系统中对纳米级颗粒(≤200nm)的应用。纳米数字全息显微镜允许在3D空间中观察移动的颗粒,并同时测量每个颗粒的三维尺寸。作为概念验证,我们报告了在空气以及固定和动态模式下的水相/固相/非均相相中对100nm和200nm颗粒(即聚苯乙烯乳胶球和金属氧化物纳米颗粒混合物)的实时观察。我们的观察结果通过高分辨率扫描/透射电子显微镜和气溶胶粒度仪得到验证。纳米数字全息显微镜与软件(章鱼/黄貂鱼)的完全自动化允许在一小时内重建数千个全息图,每个全息图的时间分辨率为62.5毫秒,从而能够探索气溶胶复杂的物理和化学过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f0b2/9814397/b7658725ae96/42004_2021_609_Fig1_HTML.jpg

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