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From tunable core-shell nanoparticles to plasmonic drawbridges: Active control of nanoparticle optical properties

机译:从可调核-壳纳米粒子到等离激元吊桥:主动控制纳米粒子的光学特性

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摘要

The optical properties of metallic nanoparticles are highly sensitive to interparticle distance, giving rise to dramatic but frequently irreversible color changes. By electrochemical modification of individual nanoparticles and nanoparticle pairs, we induced equally dramatic, yet reversible, changes in their optical properties. We achieved plasmon tuning by oxidation-reduction chemistry of Ag-AgCl shells on the surfaces of both individual and strongly coupled Au nanoparticle pairs, resulting in extreme but reversible changes in scattering line shape. We demonstrated reversible formation of the charge transfer plasmon mode by switching between capacitive and conductive electronic coupling mechanisms. Dynamic single-particle spectroelectrochemistry also gave an insight into the reaction kinetics and evolution of the charge transfer plasmon mode in an electrochemically tunable structure. Our study represents a highly useful approach to the precise tuning of the morphology of narrow interparticle gaps and will be of value for controlling and activating a range of properties such as extreme plasmon modulation, nanoscopic plasmon switching, and subnanometer tunable gap applications.
机译:金属纳米颗粒的光学性质对颗粒间距离高度敏感,从而引起剧烈但通常不可逆的颜色变化。通过对单个纳米粒子和纳米粒子对的电化学修饰,我们诱导了它们光学特性的同样显着但可逆的变化。我们通过在单个和强耦合金纳米颗粒对的表面上进行Ag-AgCl壳的氧化还原化学反应来实现等离激元调谐,从而导致散射线形状发生极端但可逆的变化。通过在电容性和导电性电子耦合机制之间切换,我们证明了电荷转移等离子体激元模式的可逆形成。动态单粒子光谱电化学也提供了在电化学可调结构中反应动力学和电荷转移等离子体激元模式演变的见解。我们的研究代表了一种非常有用的方法,可以精确地调节窄的粒子间间隙的形态,并且对于控制和激活一系列特性(例如极端等离激元调制,纳米等离激元转换和亚纳米可调谐间隙应用)具有价值。

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