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Quasi-3D Plasmonic Nanowell Array for Molecular Enrichment and SERS-Based Detection

机译:用于分子富集和基于SERS的检测的准3D等离子纳米孔阵列

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摘要

We report on a quasi-three-dimensional (3D) plasmonic nanowell array with high structural uniformity for molecular detection. The quasi-3D plasmonic nanowell array was composed of periodic hexagonal Au nanowells whose surface is densely covered with gold nanoparticles (Au NPs), separated by an ultrathin dielectric interlayer. The uniform array of the Au nanowells was fabricated by nanoimprint lithography and deposition of Au thin film. A self-assembled monolayer (SAM) of perfluorodecanethiol (PFDT) was coated on the Au surface, on which Au was further deposited. Interestingly, the PFDT-coated Au nanowells were fully covered with Au NPs with an ultra-high density of 375 μm rather than a smooth film due to the anti-wetting property of the low-energy surface. The plasmonic nanogaps formed among the high-density Au NPs led to a strong near-field enhancement via coupled localized surface plasmon resonance and produced a uniform surface-enhanced Raman spectroscopy (SERS) response with a small relative standard deviation of 5.3%. Importantly, the highly uniform nanostructure, featured by the nanoimprint lithography and 3D growth of densely-packed Au NPs, minimizes the spatial variation of Raman intensity, potentially providing quantitative analysis. Moreover, analyte molecules were highly concentrated and selectively deposited in nanowells when a water droplet containing the analyte was evaporated on the plasmonic substrate. The analyte formed a relatively thick overcoat in the nanowells near the triple line due to the coffee-ring effects. Combining 3D plasmonic nanowell substrates with molecular enrichments, highly sensitive detection of lactic acid was demonstrated. Given its combination of high sensitivity and signal uniformity, the quasi-3D plasmonic nanowell substrate is expected to provide a superior molecular detection platform for biosensing applications.
机译:我们报告了具有高结构均匀性的分子检测准三维(3D)等离子体纳米孔阵列。准3D等离子体纳米孔阵列由周期性的六边形Au纳米孔组成,其表面被金纳米颗粒(Au NPs)密集覆盖,并被超薄介电层隔开。通过纳米压印光刻和金薄膜的沉积来制造金纳米孔的均匀阵列。将全氟癸烷硫醇(PFDT)的自组装单层(SAM)涂覆在Au表面上,然后在其上进一步沉积Au。有趣的是,由于低能量表面的抗湿性,涂有PFDT的Au纳米孔被375μm的超高密度而不是光滑的薄膜完全覆盖了Au NP。在高密度金纳米粒子之间形成的等离子纳米间隙通过耦合的局部表面等离振子共振导致强的近场增强,并产生均匀的表面增强拉曼光谱(SERS)响应,相对标准偏差为5.3%,很小。重要的是,高度均匀的纳米结构具有纳米压印光刻技术和密堆积金纳米颗粒的3D生长,可最大程度地减小拉曼强度的空间变化,从而可能提供定量分析。此外,当包含分析物的水滴在等离子体衬底上蒸发时,分析物分子高度浓缩并选择性地沉积在纳孔中。由于咖啡环效应,分析物在三线附近的纳米孔中形成了相对较厚的保护层。结合分子富集的3D等离子体纳米孔底物,证明了乳酸的高灵敏度检测。鉴于其高灵敏度和信号均匀性的结合,准3D等离子体纳米孔基板有望为生物传感应用提供卓越的分子检测平台。

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