首页> 外文期刊>Journal of the Optical Society of America, A. Optics, image science, and vision >Radiation losses and dark mode at light guiding by a linear chain of nanoparticles
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Radiation losses and dark mode at light guiding by a linear chain of nanoparticles

机译:通过纳米颗粒的线性链引导辐射损失和暗模式

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A new general formula is presented for a collective extinction cross section of a dielectric or a metallic nanoparticle ensemble in terms of incident electric field work on currents excited inside particles. The formula is obtained by identical transformation of the well-known expression for the summing power of electromagnetic field energy losses caused by particle ensemble scattering and absorption. The derived formula is applied to the problem of radiation losses at electromagnetic excitation transfer along a straight chain of particles. Our general formula predicts a zero collective extinction cross section for an infinite straight chain of nonabsorbing dielectric particles providing that the projection of the wave vector of an incident electromagnetic wave on the chain axis does not coincide with its counterpart of the Bloch wave vector of propagating excitation. In another case of a finite chain of particles, with only the first particle of the chain irradiated by an incident narrow electromagnetic wave beam, the derived formula shows that only the irradiated particle directly contributes to the collective extinction cross section despite how large the total number of particles can be, which makes a direct summing contribution of all other particles to wave scattering as if they were unviewed (dark mode). Using a recently developed quasi-separable T-scattering operator approach that leads to the equation system for self-consistent currents excited inside particles by an incident electromagnetic wave field and restricting ourselves to the electric dipole single scattering and neighbor coupling approximation, we revealed a few gigahertz transparency band in the terahertz frequency range (orange color) in the spectra of a straight chain of closely spaced gold nanospheres of a certain radius and a length of a few millimeters. A resonant mechanism of filtering the dark mode from radiation losses established in this work allowed us to reveal a few-fold-more narrow passband in the spectra of a longer gold particle chain with the full length of a few centimeters. (C) 2017 Optical Society of America.
机译:根据入射电场对粒子内部激发电流的功,给出了电介质或金属纳米粒子系综集体消光截面的一个新的通用公式。该公式是通过对著名的粒子系综散射和吸收引起的电磁场能量损失的总功率表达式进行恒等变换得到的。推导出的公式被应用于沿直线粒子链传输电磁激励时的辐射损失问题。如果入射电磁波在链轴上的波矢投影与其传播激励的布洛赫波矢的对应物不一致,我们的一般公式预测了无限长直链非吸收电介质粒子的零集体消光截面。在有限粒子链的另一种情况下,只有链中的第一个粒子受到入射窄电磁波束的照射,导出的公式表明,无论粒子总数有多大,只有被照射的粒子直接贡献于集体消光截面,这使得所有其他粒子对波散射的贡献直接相加,就好像它们没有被观察到一样(暗模式)。使用最近发展的准可分离T-散射算子方法,该方法导致粒子内部由入射电磁波场激发的自洽电流方程组,并将我们自己限制为电偶极子单次散射和相邻耦合近似,我们发现,在一定半径和几毫米长的紧密间隔的金纳米球的直链光谱中,太赫兹频率范围(橙色)有几千兆赫兹的透明带。在这项工作中建立的从辐射损失中滤除暗模式的共振机制,使我们能够在全长几厘米的较长金粒子链的光谱中揭示出几倍更窄的通带。(C) 2017年美国光学学会。

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