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使用液滴微流控技术连续制造具有可控金属覆盖纳米颗粒阵列的微胶囊,用于局域表面等离子体共振。

Continuous fabrication of microcapsules with controllable metal covered nanoparticle arrays using droplet microfluidics for localized surface plasmon resonance.

机构信息

Institute of Electronic Paper Displays, South China Academy of Advanced Optoelectronics, South China Normal University, Guangzhou 510006, China.

出版信息

Lab Chip. 2017 May 31;17(11):1970-1979. doi: 10.1039/c7lc00081b.

Abstract

The construction of ordered nanoparticle arrays is important for nanophotonics and sensing applications. We report a facile technology for continuous-flow fabrication of particle-laden plasmonic microcapsules (PLPMs) by combining droplet microfluidics, nanoparticle self-assembly and thin film deposition. The metallic hierarchical nanostructures on PLPMs are presented with high-density "hot-spot" scattering sites with the nanoarray pitch and gap distance being controlled by the deposited metal film thickness and nanoparticle size. The noble metal "hot-spots" show high, localized surface plasmon resonance according to the near-field electromagnetic field enhancement. Surface-enhanced Raman scattering (SERS) analytical enhancement factors of >10 can be obtained with good reproducibility using 4-methylbenzenethiol (4-MBT) as a probe molecule and Au or Ag as the metal layer. The droplet microfluidics platform enables continuous generation of homogeneous microcapsules with high frequency. This proposed strategy therefore combines advantages from both top-down (creation of microdroplets and deposition of the metal film) and bottom-up (self-assembly of nanoparticles) processes with flexibility in material selection (nanoparticles and polymer) and structure scaling (metal layer thickness, nanoparticle size and microcapsule size). Therefore, it provides a fast and reliable method of producing plasmonic microsensors.

摘要

有序纳米粒子阵列的构建对于纳米光子学和传感应用非常重要。我们报告了一种通过结合液滴微流控、纳米粒子自组装和薄膜沉积来连续制造载粒子等离子体微胶囊(PLPM)的简便技术。PLPM 上的金属分层纳米结构具有高密度的“热点”散射位点,纳米阵列的间距和间隙距离可以通过沉积的金属膜厚度和纳米粒子尺寸来控制。根据近场电磁场增强,贵金属“热点”显示出高的、局域的表面等离子体共振。使用 4-巯基苯硫醇(4-MBT)作为探针分子和 Au 或 Ag 作为金属层,可以获得>10 的表面增强拉曼散射(SERS)分析增强因子,并且具有良好的重现性。液滴微流控平台能够以高频率连续产生均匀的微胶囊。因此,该策略结合了自上而下(微滴的形成和金属膜的沉积)和自下而上(纳米粒子的自组装)过程的优势,具有材料选择(纳米粒子和聚合物)和结构缩放(金属层厚度、纳米粒子尺寸和微胶囊尺寸)的灵活性。因此,它提供了一种生产等离子体微传感器的快速可靠的方法。

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