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新型动态技术——纳米 DIHM,用于快速检测水生系统中的油类、重金属和生物泄漏物。

Novel Dynamic Technique, Nano-DIHM, for Rapid Detection of Oil, Heavy Metals, and Biological Spills in Aquatic Systems.

机构信息

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

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

出版信息

Anal Chem. 2022 Aug 16;94(32):11390-11400. doi: 10.1021/acs.analchem.2c02396. Epub 2022 Aug 5.

Abstract

Numerous anthropogenic and natural particle contaminants exist in diverse aquatic systems, with widely unknown environmental fates. We coupled a flow tube with a digital in-line holographic microscopy (nano-DIHM) technique for aquatic matrices, for real-time analysis of particle size, shape, and phase. Nano-DIHM enables 4D tracking of particles in water and their transformations in three-dimensional space. We demonstrate that nano-DIHM can be automated to detect and track oil spills/oil droplets in dynamic systems. We provide evidence that nano-DIHM can detect the MS2 bacteriophage as a representative biological-viral material and mercury-containing particles alongside other heavy metals as common toxic contaminants. Nano-DIHM shows the capability of observation of combined materials in water, characterizing the interactions of various particles in mixtures, and particles with different coatings in a suspension. The observed sizes of the particles and droplets ranged from ∼1 to 200 μm. We herein demonstrate the ability of nano-DIHM to characterize and distinguish particle-based contaminants in water and their interactions in both stationary and dynamic modes with a 62.5 millisecond time resolution. The fully automated software for dynamic and real-time detection of contaminants will be of global significance. A comparison is also made between nano-DIHM and established techniques such as S/TEM for their different capabilities. Nano-DIHM can provide a range of physicochemical information in stationary and dynamic modes, allowing life cycle analysis of diverse particle contaminants in different aquatic systems, and serve as an effective tool for rapid response for spills and remediation of natural waters.

摘要

在各种水生系统中存在着大量的人为和自然颗粒污染物,其环境归宿尚不清楚。我们将流管与数字在线全息显微镜(nano-DIHM)技术相结合,用于水生基质的实时分析,以分析颗粒的大小、形状和相。nano-DIHM 能够在水中对颗粒进行 4D 跟踪,并在三维空间中对其转化进行跟踪。我们证明了 nano-DIHM 可以自动化检测和跟踪动态系统中的溢油/油滴。我们提供的证据表明,nano-DIHM 可以检测到作为代表性生物病毒材料的 MS2 噬菌体以及含汞颗粒和其他常见的有毒污染物。nano-DIHM 展示了在水中观察组合材料的能力,能够描述混合物中各种颗粒之间的相互作用以及悬浮液中不同涂层的颗粒之间的相互作用。观察到的颗粒和液滴的尺寸范围从约 1 到 200μm。本文展示了 nano-DIHM 以 62.5 毫秒的时间分辨率在静态和动态模式下对水中颗粒污染物及其相互作用进行特征描述和区分的能力。用于动态和实时检测污染物的全自动软件具有全球意义。还比较了 nano-DIHM 与 S/TEM 等现有技术的不同能力。nano-DIHM 可以在静态和动态模式下提供一系列物理化学信息,允许对不同水生系统中的各种颗粒污染物进行生命周期分析,并作为快速应对溢油和自然水域修复的有效工具。

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