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Modeling the Optical Properties of Bowtie Antenna Generated By Self-Assembled Ag Triangular Nanoprisms

机译:自组装银三角纳米棱镜产生的领结天线的光学特性建模

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Self-organized metal nanoparticles often possess assembly defects that can have a profound impact on the optical properties of the resulting nanoparticle assembly. Modeling these defects and evaluating their optical outcomes can provide a better understanding of how to design the assembly process and can evaluate the quality of the resulting materials. Here, we use finite element methods to examine the fabrication of bowtie nanoantenna, a commonly sought-after plasmonic structure with resonances in the visible and near-infrared wavelengths, through the self-assembly of colloidal triangular Ag nanoprisms. We model perfect and defective antenna structures and examine the effects of commonly observed assembly defects such as imperfect nanoprism shapes, off-axis antenna structures, and trimer or tetramer formation. We also evaluate the ability to fabricate antenna structures that possess comparable structural parameters (e.g., thickness, gap distance) to top-down lithographic techniques. We find that structural defects in self-assembled bowties can shift the resonant wavelength of the antenna by as much as 200 nm. Our models also indicate that self-assembled bowties possess high defect tolerances with respect to near-field enhancement, suggesting that they are viable structures for nanophotonic and nanoplasmonic applications.
机译:自组织的金属纳米颗粒通常具有组装缺陷,这些缺陷可能对所得纳米颗粒组装的光学性能产生深远影响。对这些缺陷进行建模并评估其光学效果可以更好地理解如何设计组装过程,并可以评估最终材料的质量。在这里,我们使用有限元方法通过胶体三角Ag纳米棱镜的自组装,来研究蝶形纳米天线的制造,蝶形纳米天线是一种常见的等离子体结构,在可见光和近红外波长具有共振。我们对完美和有缺陷的天线结构进行建模,并检查通常观察到的组装缺陷的影响,例如不完美的纳米棱镜形状,离轴天线结构以及三聚体或四聚体形成。我们还评估了制造具有与自上而下的光刻技术可比的结构参数(例如厚度,间隙距离)的天线结构的能力。我们发现,自组装蝴蝶结的结构缺陷会使天线的谐振波长偏移多达200 nm。我们的模型还表明,自组装蝴蝶结在近场增强方面具有较高的缺陷容忍度,表明它们是用于纳米光子和纳米等离子体应用的可行结构。

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