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液滴引导的等离子体微柱超疏水阵列用于分子浓缩和检测。

Droplet-Guiding Superhydrophobic Arrays of Plasmonic Microposts for Molecular Concentration and Detection.

机构信息

Department of Chemical and Biomolecular Engineering (BK21+ Program), KAIST , Daejeon 34141, Korea.

Nano-Convergence Mechanical Systems Research Division, Korea Institute of Machinery and Materials , Daejeon 34103, Korea.

出版信息

ACS Appl Mater Interfaces. 2017 Oct 25;9(42):37201-37209. doi: 10.1021/acsami.7b11506. Epub 2017 Oct 10.

Abstract

Droplet-guiding superhydrophobic SERS substrates are created by a combinatorial lithographic technique. Photolithography defines the pattern of a micropillar array with a radial density gradient, whereas colloidal lithography features a nanotip array on the top surface of each micropillar. The nanotip array renders the surface superhydrophobic, and the pattern of micropillars endows the radial gradient of the contact angle, enabling the spontaneous droplet migration toward the center of the pattern. Water droplets containing target molecules are guided to the center, and the molecules dissolved in the droplets are concentrated at the surface of the central micropillar during droplet evaporation. Therefore, the molecules can be analyzed at the predefined position by Raman spectra without scanning the entire substrate. At the same time, the SERS-active nanotip array provides high sensitivity of Raman measurement.

摘要

通过组合光刻技术制备液滴导向超疏水 SERS 基底。光刻定义了具有径向密度梯度的微柱阵列图案,而胶体光刻则在每个微柱的顶表面具有纳米尖端阵列。纳米尖端阵列使表面超疏水,而微柱的图案赋予接触角的径向梯度,从而使液滴自发地向图案中心迁移。含有目标分子的液滴被引导到中心,并且在液滴蒸发过程中,溶解在液滴中的分子在中央微柱的表面浓缩。因此,在不扫描整个基底的情况下,可以通过拉曼光谱在预定位置分析分子。同时,SERS 活性纳米尖端阵列提供了拉曼测量的高灵敏度。

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