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分层超疏水装置用于浓缩和精确定位水溶性分析物:一种环境分析方法。

Hierarchical Superhydrophobic Device to Concentrate and Precisely Localize Water-Soluble Analytes: A Route to Environmental Analysis.

机构信息

LAAS-CNRS, Université de Toulouse, CNRS, INSA, 31400 Toulouse, France.

TBI, Université de Toulouse, CNRS, INRAE, INSA, 31400 Toulouse, France.

出版信息

Langmuir. 2022 Nov 22;38(46):14249-14260. doi: 10.1021/acs.langmuir.2c01690. Epub 2022 Nov 11.

Abstract

An efficient superhydrophobic concentrator is developed using a hierarchical superhydrophobic surface on which the evaporation of a sessile droplet (6 μL) drives the nonvolatile elements it contains on a predefined micrometric analytical surface (pedestal of 80 μm diameter). This hierarchical silicon surface exhibits a surface texture made of etched nanopillars and consists of micropillars and guiding lines, arranged in radial symmetry around the central pedestal. The guiding lines ensure the overall convergence of the sessile droplet toward the central pedestal during evaporation. The nanopillar texturing induced a delay in the Cassie-Baxter to Wenzel regime transition, until the edge of the droplet reaches the periphery of the pedestal. Experiments performed with polymer microparticles suspended in ultrapure water or with DNA molecules solubilized in ultrapure water at sub-fM concentrations demonstrated that the totality of the nonvolatile elements in the liquid microvolume is delivered on or close to the pedestal area, in a very reproducible manner. The very high concentration capacity of the device enabled the discrimination of the degree of purity of ultrapure water samples from different origins. The concentrator also turned out to be functional for raw water samples, opening possible applications to environmental analysis.

摘要

利用具有分级超疏水表面的高效超疏水浓缩器,使附着液滴(6 μL)的蒸发能够将其所含的非挥发性元素驱动到预定的微分析表面(80 μm 直径的基座)上。这种分级硅表面具有由刻蚀纳米柱组成的表面纹理,并且由微柱和导向线组成,这些微柱和导向线以径向对称的方式围绕中心基座排列。导向线确保附着液滴在蒸发过程中整体向中心基座汇聚。纳米柱纹理导致 Cassie-Baxter 到 Wenzel 状态的转变延迟,直到液滴的边缘到达基座的周边。使用悬浮在超纯水中的聚合物微颗粒或在亚 fM 浓度下溶解在超纯水中的 DNA 分子进行的实验表明,液体微体积中所有的非挥发性元素都以非常可重现的方式被输送到或靠近基座区域。该装置的超高浓度能力使我们能够区分来自不同来源的超纯水样品的纯度程度。该浓缩器对于原水样品也具有功能,为环境分析开辟了可能的应用。

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