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Non-lithographic SERS substrates: Tailoring surface chemistry for Au nanoparticle cluster assembly

机译:非光刻SERS基底:定制用于Au纳米粒子簇组装的表面化学

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Near-field plasmonic coupling and local field enhancement in metal nanoarchitectures, such as arrangements of nanoparticle clusters, have application in many technologies from medical diagnostics, solar cells, to sensors. Although nanoparticle-based cluster assemblies have exhibited signal enhancements in surface-enhanced Raman scattering (SERS) sensors, it is challenging to achieve high reproducibility in SERS response using low-cost fabrication methods. Here an innovative method is developed for fabricating self-organized clusters of metal nanoparticles on diblock copolymer thin films as SERS-active structures. Monodisperse, colloidal gold nanoparticles are attached via a crosslinking reaction on self-organized chemically functionalized poly(methyl methacrylate) domains on polystyrene-block-poly(methyl methacrylate) templates. Thereby nanoparticle clusters with sub-10-nanometer interparticle spacing are achieved. Varying the molar concentration of functional chemical groups and crosslinking agent during the assembly process is found to affect the agglomeration of Au nanoparticles into clusters. Samples with a high surface coverage of nanoparticle cluster assemblies yield relative enhancement factors on the order of 10 ~9 while simultaneously producing uniform signal enhancements in point-to-point measurements across each sample. High enhancement factors are associated with the narrow gap between nanoparticles assembled in clusters in full-wave electromagnetic simulations. Reusability for small-molecule detection is also demonstrated. Thus it is shown that the combination of high signal enhancement and reproducibility is achievable using a completely non-lithographic fabrication process, thereby producing SERS substrates having high performance at low cost.
机译:金属纳米结构中的近场等离子体耦合和局部场增强,例如纳米粒子簇的排列,已在从医学诊断,太阳能电池到传感器的许多技术中得到应用。尽管基于纳米粒子的簇组件在表面增强拉曼散射(SERS)传感器中表现出信号增强,但是使用低成本制造方法实现SERS响应的高可重复性仍是挑战。在这里,开发了一种创新的方法,用于在二嵌段共聚物薄膜上以SERS活性结构的形式制造金属纳米粒子的自组织簇。单分散的胶体金纳米颗粒通过交联反应附着在聚苯乙烯嵌段聚(甲基丙烯酸甲酯)模板上的自组织化学官能化的聚(甲基丙烯酸甲酯)结构域上。由此获得具有小于10纳米的粒子间间隔的纳米粒子簇。发现在组装过程中功能化学基团和交联剂的摩尔浓度的变化会影响Au纳米粒子聚集成团簇。具有高表面覆盖度的纳米粒子簇组件的样品产生的相对增强因子约为10〜9,同时在每个样品的点对点测量中均产生均匀的信号增强。高增强因子与在全波电磁模拟中以簇形式组装的纳米颗粒之间的狭窄间隙有关。还证明了小分子检测的可重用性。因此表明,使用完全非光刻的制造工艺可以实现高信号增强和再现性的结合,从而以低成本生产具有高性能的SERS衬底。

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