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纳米颗粒阵列产生的近场极限分析

Analysis of the Limits of the Near-Field Produced by Nanoparticle Arrays.

作者信息

Manjavacas Alejandro, Zundel Lauren, Sanders Stephen

机构信息

Department of Physics and Astronomy , University of New Mexico , Albuquerque , New Mexico 87131 , United States.

出版信息

ACS Nano. 2019 Sep 24;13(9):10682-10693. doi: 10.1021/acsnano.9b05031. Epub 2019 Sep 11.

Abstract

Periodic arrays are an exceptionally interesting arrangement for metallic nanostructures because of their ability to support collective lattice resonances. These modes, which arise from the coherent multiple scattering enabled by the lattice periodicity, give rise to very strong and spectrally narrow optical responses. Here, we investigate the enhancement of the near-field produced by the lattice resonances of arrays of metallic nanoparticles when illuminated with a plane wave. We find that, for infinite arrays, this enhancement can be made arbitrarily large by appropriately designing the geometrical characteristics of the array. On the other hand, in the case of finite arrays, the near-field enhancement is limited by the number of elements of the array that interact coherently. Furthermore, we show that, as the near-field enhancement increases, the length scale over which it extends above and below the array becomes larger and its spectral linewidth narrows. We also analyze the impact that material losses have on these behaviors. As a direct application of our results, we investigate the interaction between a nanoparticle array and a dielectric slab placed a certain distance above it and show that the extraordinary near-field enhancement produced by the lattice resonance can lead to very strong interactions, even at significantly large separations. This work provides a detailed characterization of the limits of the near-field produced by lattice resonances and, therefore, advances our knowledge of the optical response of periodic arrays of nanostructures, which can be used to design and develop applications exploiting the extraordinary properties of these systems.

摘要

周期性阵列对于金属纳米结构而言是一种格外有趣的排列方式,因为它们能够支持集体晶格共振。这些模式源于晶格周期性所促成的相干多次散射,会产生非常强烈且光谱线宽窄的光学响应。在此,我们研究当用平面波照射时,金属纳米颗粒阵列的晶格共振所产生的近场增强效应。我们发现,对于无限阵列,通过适当地设计阵列的几何特征,这种增强效应可以变得任意大。另一方面,在有限阵列的情况下,近场增强受到相干相互作用的阵列元素数量的限制。此外,我们表明,随着近场增强的增加,其在阵列上方和下方延伸的长度尺度会变大,并且其光谱线宽会变窄。我们还分析了材料损耗对这些行为的影响。作为我们研究结果的直接应用,我们研究了纳米颗粒阵列与放置在其上方一定距离处的电介质平板之间的相互作用,并表明晶格共振产生的非凡近场增强效应即使在相当大的间距下也能导致非常强的相互作用。这项工作详细表征了晶格共振产生的近场的极限,因此增进了我们对纳米结构周期性阵列光学响应的了解,这可用于设计和开发利用这些系统非凡特性的应用。

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