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Solvent-Assisted Self-Assembly of Gold Nanorods into Hierarchically Organized Plasmonic Mesostructures

机译:金纳米棒的溶剂辅助自组装成分层组织的等离子体型腹腔结构

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摘要

Plasmonic supercrystals and periodically structured arrays comprise a class of materials with unique optical properties that result from the interplay of plasmon resonances, as well as near-and far-field coupling. Controlled synthesis of such hierarchical structures remains a fundamental challenge, as it demands strict control over the assembly morphology, array size, lateral spacing, and macroscale homogeneity. Current fabrication approaches involve complicated multistep procedures lacking scalability and reproducibility, which has hindered the practical application of plasmonic supercrystal arrays. Herein, these challenges are addressed by adding an organic solvent to achieve kinetic control over the template-assisted colloidal assembly of nanoparticles from aqueous dispersion. This method yields highly regular periodic arrays, with feature sizes ranging from less than 200 nm up to tens of microns. A combined experimental/computational approach reveals that the underlying mechanism is a combination of the removal of interfacial surfactant micelles from the particle interface and altered capillary flows. Assessing the efficacy of such square arrays for surface-enhanced Raman scattering spectroscopy, we find that a decrease of the lattice periodicity from 750 nm down to 400 nm boosts the signal by more than an order of magnitude, thereby enabling sensitive detection of analytes, such as the bacterial quorum sensing molecule pyocyanin, even in complex biological media.
机译:等离子体超声器和周期性结构阵列包括一类具有独特的光学性质的材料,其由等离子体共振的相互作用以及近乎和远场耦合来引起。这种层级结构的受控合成仍然是一个根本的挑战,因为它要求严格控制组装形态,阵列大小,横向间隔和宏观均匀性。目前的制造方法涉及缺乏可扩展性和再现性的复杂多步骤,这阻碍了等级超声阵列的实际应用。在此,通过添加有机溶剂来解决这些挑战以通过水分散体的纳米颗粒的模板辅助胶体组件实现动力学控制。该方法产生高度常规的周期阵列,具有小于200nm的特征尺寸高达数十微米。组合的实验/计算方法揭示了基础机制是从颗粒界面和改变的毛细管流中除去界面表面活性剂胶束的组合。评估这种方形阵列对表面增强拉曼散射光谱的功效,发现晶格周期性从750nm降至400nm的晶格周期性的减少使信号提升了多个数量级,从而能够敏感地检测分析物,例如分析物检测作为细菌仲裁感测分子苯胺,即使在复杂的生物介质中。

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