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具有宽范围共振可调谐性的胶体等离子体纳米星天线。

Colloidal plasmonic nanostar antennas with wide range resonance tunability.

机构信息

Department of Materials Science and Engineering, Rutgers University, 607 Taylor Road, Piscataway, NJ 08854, USA.

Department of Chemistry and Chemical Biology, Rutgers University, 610 Taylor Road, Piscataway, NJ 08854, USA.

出版信息

Nanoscale. 2019 Oct 28;11(40):18662-18671. doi: 10.1039/c9nr06533d. Epub 2019 Oct 4.

Abstract

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.

摘要

金纳米星具有出色的场增强特性和可调谐的共振模式,可用于创建有效的成像标签、光疗剂和基于热电子的光催化平台。尽管它们作为等离子体纳米粒子在共振强度和可调谐性方面已经成为基石,但一些众所周知的局限性阻碍了它们的技术实现。在这里,我们通过提出一种新的 6 刺纳米星来解决这些公认的内在弱点,该纳米星具有复杂的形态,因此在计算上难以处理,而且样品的单分散性有限。我们已经对其进行了计算研究和合成实现,作为具有广泛等离子体可调谐性的三维等离子体纳米天线的典范。我们的协同计算和实验研究表明,这些纳米星结合了自上而下和自下而上制造的纳米结构的独特优势,展示了一种独特的等离子体响应,从单个粒子到整体,这种响应基本保持不变。此外,它们还具有多个分离良好的窄共振,其中最强的共振在空间中的延伸远大于以前在胶体纳米结构周围观察到的任何等离子体模式。重要的是,形态和等离子体响应之间的独特紧密相关性使得这些粒子的共振模式能够在 600nm 至 2000nm 之间进行调谐,这一独特的特性在前沿技术应用中可能具有相关性。

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