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Colloidal plasmonic nanostar antennas with wide range resonance tunability

机译:胶体电浆nanostar天线与宽共振范围可调谐性

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Gold nanostars display exceptional field enhancement properties and tunable resonant modes that can be leveraged to create effective imaging tags, phototherapeutic agents, and hot electron-based photocatalytic platforms. Despite having emerged as the cornerstone among plasmonic nanoparticles with respect to resonant strength and tunability, some well-known limitations have hampered their technological implementation. Herein we tackle these recognized intrinsic weaknesses, which stem from the complex, and thus computationally untreatable morphology and the limited sample monodispersity, by proposing a novel 6-spike nanostar, which we have computationally studied and synthetically realized, as the epitome of 3D plasmonic nanoantenna with wide range plasmonic tunability. Our concerted computational and experimental effort shows that these nanostars combine the unique advantages of nanostructures fabricated from the top-down and those synthesized from the bottom-up, showcasing a unique plasmonic response that remains largely unaltered on going from the single particle to the ensemble. Furthermore, they display multiple, well-separated, narrow resonances, the most intense of which extends in space much farther than that observed before for any plasmonic mode localized around a colloidal nanostructure. Importantly, the unique close correlation between morphology and plasmonic response leads the resonant modes of these particles to be tunable between 600 and 2000 nm, a unique feature that could find relevance in cutting edge technological applications.
机译:黄金nanostars显示特殊领域增强属性和可调谐振模式,可用于创建有效的成像标签,phototherapeutic代理和热电子光催化平台。有成为基石的电浆纳米粒子对共振的力量和可调谐性,一些著名的局限性阻碍了他们的技术实现。这里我们解决这些公认的内在弱点,这源于复杂,因此计算无法治愈的形态和有限的样本单分散性,提议小说6-spike nanostar,我们有计算研究和综合意识到,如3 d电浆的缩影nanoantenna广泛电浆的可调性。我们共同计算和实验努力表明这些nanostars结合纳米结构组装的独特优势从自顶向下和合成自底向上,展示独特的电浆反应从很大程度上保持着不变的单粒子系综。布置得井然有序,他们显示多个窄共鸣,最激烈的延伸空间比之前观察到更远的地方任何电浆模式本地化胶体纳米结构。形态和电浆之间的相关性响应的共振模式可调600至2000纳米粒子,一个独特的功能,能找到的相关性前沿技术的应用程序。

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