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Rational Assembly of Optoplasmonic Hetero-nanoparticle Arrays with Tunable Photonic–Plasmonic Resonances

机译:具有可调谐光子-等离子体共振的光等离子体异质纳米粒子阵列的合理组装。

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摘要

Metallic and dielectric nanoparticles (NPs) have synergistic electromagnetic properties but their positioning into morphologically defined hybrid arrays with novel optical properties still poses significant challenges. A template-guided self-assembly strategy is introduced for the positioning of metallic and dielectric NPs at pre-defined lattice sites. The chemical assembly approach facilitates the fabrication of clusters of metallic NPs with interparticle separations of only a few nanometers in a landscape of dielectric NPs positioned hundreds of nanometers apart. This approach is used to generate two-dimensional interdigitated arrays of 250 nm diameter TiO2 NPs and clusters of electromagnetically strongly coupled 60 nm Au NPs. The morphologydependent near- and far-field responses of the resulting multiscale optoplasmonic arrays are analyzed in detail. Elastic and inelastic scattering spectroscopy in combination with electromagnetic simulations reveal that optoplasmonic arrays sustain delocalized photonic–plasmonic modes that achieve a cascaded E-field enhancement in the gap junctions of the Au NP clusters and simultaneously increase the E-field intensity throughout the entire array.
机译:金属和介电纳米粒子(NPs)具有协同的电磁特性,但是将它们定位在具有新颖光学特性的形态定义混合阵列中仍然构成重大挑战。引入了模板引导的自组装策略,用于将金属和电介质NP定位在预定义的晶格位置。化学组装方法有助于在间距为数百纳米的电介质NP中,仅以几纳米的颗粒间间隔制造金属NP簇。该方法用于生成直径为250 nm的TiO2 NP的二维交叉阵列和电磁强耦合的60 nm Au NP的簇。详细分析了所得多尺度光等离子体阵列的形态学相关的近场和远场响应。弹性和非弹性散射光谱结合电磁模拟表明,光等离子体阵列维持离域光子-等离子体模式,在金纳米粒子簇的间隙连接处实现级联的电场增强,同时在整个阵列中增加电场强度。

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