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通过组装 Ag 纳米立方体制备的超疏水表面增强拉曼散射平台用于痕量分子传感。

Superhydrophobic surface-enhanced Raman scattering platform fabricated by assembly of Ag nanocubes for trace molecular sensing.

机构信息

Division of Chemistry and Biological Chemistry, School of Physical and Mathematical Sciences, Nanyang Technological University , Singapore 637371.

出版信息

ACS Appl Mater Interfaces. 2013 Nov 13;5(21):11409-18. doi: 10.1021/am403655g. Epub 2013 Nov 1.

Abstract

An analytical platform suitable for trace detection using a small volume of analyte is pertinent to the field of toxin detection and criminology. Plasmonic nanostructures provide surface-enhanced Raman scattering (SERS) that can potentially achieve trace toxins and/or molecules detection. However, the detection of highly diluted, small volume samples remains a challenge. Here, we fabricate a superhydrophobic SERS platform by assembling Ag nanocubes that support strong surface plasmon and chemical functionalization for trace detection with sample volume of just 1 μL. Our strategy integrates the intense electromagnetic field confinement generated by Ag nanocubes with a superhydrophobic surface capable of analyte concentration to lower the molecular detection limit. Single crystalline Ag nanocubes are assembled using the Langmuir-Blodgett technique to create surface roughness. To create a stable superhydrophobic SERS platform, an additional 25 nm Ag coating is evaporated over the Ag nanocubes to "weld" the Ag nanocubes onto the substrate followed by chemical functionalization with perfluorodecanethiol. The resulting substrate has an advancing contact angle of 169° ± 5°. Our superhydrophobic platform confines analyte molecules within a small area and prevents the random spreading of molecules. An analyte concentrating factor of 14-fold is attained, as compared to a hydrophilic surface. Consequently, the detection limit of our superhydrophobic SERS substrate reaches 10(-16) M (100 aM) for rhodamine 6G using 1 μL analyte solutions. An analytical SERS enhancement factor of 10(11) is achieved. Our protocol is a general method that provides a simple, cost-effective approach to develop a stable and uniform superhydrophobic SERS platform for trace molecular sensing.

摘要

一个适用于痕量分析物小体积检测的分析平台与毒素检测和犯罪学领域相关。等离子体纳米结构提供表面增强拉曼散射(SERS),有可能实现痕量毒素和/或分子检测。然而,高度稀释、小体积样品的检测仍然是一个挑战。在这里,我们通过组装支持强表面等离子体和化学功能化的 Ag 纳米立方体制造了一个超疏水 SERS 平台,用于痕量检测,样品体积仅为 1 μL。我们的策略将 Ag 纳米立方体产生的强电磁场限制与能够浓缩分析物的超疏水表面集成在一起,以降低分子检测极限。单晶 Ag 纳米立方体使用 Langmuir-Blodgett 技术组装以产生表面粗糙度。为了创建一个稳定的超疏水 SERS 平台,在 Ag 纳米立方体上蒸发额外的 25nm Ag 涂层,以“焊接”Ag 纳米立方体到基底上,然后用全氟癸硫醇进行化学功能化。得到的基底具有 169°±5°的前进接触角。我们的超疏水平台将分析物分子限制在一个小区域内,并防止分子随机扩散。与亲水表面相比,获得了 14 倍的分析物浓缩因子。因此,使用 1μL 分析物溶液,我们的超疏水 SERS 基底对罗丹明 6G 的检测极限达到 10(-16)M(100aM)。实现了 10(11)的分析 SERS 增强因子。我们的方案是一种通用方法,为开发用于痕量分子传感的稳定、均匀的超疏水 SERS 平台提供了一种简单、经济有效的方法。

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