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从胶体溶液中定向形成金纳米粒子簇。

Directing cluster formation of Au nanoparticles from colloidal solution.

机构信息

Department of Chemical Engineering and Materials Science, University of California, Irvine, Irvine, California 92697, United States.

出版信息

Langmuir. 2013 Apr 2;29(13):4242-51. doi: 10.1021/la3051719. Epub 2013 Mar 22.

Abstract

Discrete clusters of closely spaced Au nanoparticles can be utilized in devices from photovoltaics to molecular sensors because of the formation of strong local electromagnetic field enhancements when illuminated near their plasmon resonance. In this study, scalable, chemical self-organization methods are shown to produce Au nanoparticle clusters with uniform nanometer interparticle spacing. The performance of two different methods, namely electrophoresis and diffusion, for driving the attachment of Au nanoparticles using a chemical cross-linker on chemically patterned domains of polystyrene-block-poly(methyl methacrylate) (PS-b-PMMA) thin films are evaluated. Significantly, electrophoresis is found to produce similar surface coverage as diffusion in 1/6th of the processing time with an ~2-fold increase in the number of Au nanoparticles forming clusters. Furthermore, average interparticle spacing within Au nanoparticle clusters was found to decrease from 2-7 nm for diffusion deposition to approximately 1-2 nm for electrophoresis deposition, and the latter method exhibited better uniformity with most clusters appearing to have about 1 nm spacing between nanoparticles. The advantage of such fabrication capability is supported by calculations of local electric field enhancements using electromagnetic full-wave simulations from which we can estimate surface-enhanced Raman scattering (SERS) enhancements. In particular, full-wave results show that the maximum SERS enhancement, as estimated here as the fourth power of the local electric field, increases by a factor of 100 when the gap goes from 2 to 1 nm, reaching values as large as 10(10), strengthening the usage of electrophoresis versus diffusion for the development of molecular sensors.

摘要

由于在等离子体共振附近照射时会形成强局域电磁场增强,因此紧密间隔的离散 Au 纳米粒子簇可用于从光伏到分子传感器的器件中。在这项研究中,展示了可扩展的化学自组装方法,可生产具有均匀纳米粒子间间隔的 Au 纳米粒子簇。评估了两种不同的方法,即电泳和扩散,用于使用化学交联剂在聚苯乙烯-嵌段-聚(甲基丙烯酸甲酯)(PS-b-PMMA)薄膜的化学图案化区域上驱动 Au 纳米粒子的附着。重要的是,发现电泳在处理时间的 1/6 内产生与扩散相似的表面覆盖率,并且形成簇的 Au 纳米粒子的数量增加了约 2 倍。此外,发现 Au 纳米粒子簇内的平均粒子间间隔从扩散沉积的 2-7nm 减小到电泳沉积的约 1-2nm,并且后一种方法显示出更好的均匀性,大多数簇之间的纳米粒子间隔似乎约为 1nm。使用电磁全波模拟进行局部电场增强的计算支持了这种制造能力的优势,我们可以从中估计表面增强拉曼散射(SERS)增强。特别是,全波结果表明,最大 SERS 增强(此处估计为局部电场的四次幂)当间隙从 2nm 变为 1nm 时增加了 100 倍,达到高达 10(10)的值,增强了电泳与扩散相比在分子传感器开发中的应用。

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