Harnessing complexity: Nonlinear optical phenomena in L-shapes, nanocrescents, and split-ring resonators

Michael R. Clark, Syed A. Shah, Andrei Piryatinski, Maxim Sukharev
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Abstract

We conduct systematic studies of the optical characteristics of plasmonic nanoparticles that exhibit C2v symmetry. In particular, we analyze three distinct geometric configurations: an L-type shape, a crescent, and a split-ring resonator shaped like the Greek letter π. Optical properties are examined using the finite-difference time-domain method. It is demonstrated that all three shapes exhibit two prominent plasmon modes associated with the two axes of symmetry. This is in addition to a wide range of resonances observed at high frequencies corresponding to quadrupole modes and peaks due to sharp corners. Next, to facilitate nonlinear analysis, we employ a semiclassical hydrodynamic model, where the electron pressure term is explicitly accounted for. This model goes beyond the standard Drude description and enables capturing nonlocal and nonlinear effects. Employing this model enables us to rigorously examine the second-order angular resolved nonlinear optical response of these nanoparticles in each of the three configurations. Two pumping regimes are considered, namely, continuous wave (CW) and pulsed excitations. For CW pumping, we explore the properties of the second harmonic generation (SHG). Polarization and angle-resolved SHG spectra are obtained, revealing strong dependence on the nanoparticle geometry and incident wave polarization. The C2v symmetry is shown to play a key role in determining the polarization states and selection rules of the SHG signal. For pulsed excitations, we discuss the phenomenon of broadband terahertz (THz) generation induced by the difference-frequency generation . It is shown that the THz emission spectra exhibit unique features attributed to the plasmonic resonances and symmetry of the nanoparticles. The polarization of the generated THz waves is also examined, revealing interesting patterns tied to the nanoparticle geometry. To gain deeper insight, we propose an analytical theory that agrees very well with the numerical experiments. The theory shows that the physical origin of the THz radiation is the mixing of various frequency components of the fundamental pulse by the second-order nonlinear susceptibility. An expression for the far-field THz intensity is derived in terms of the incident pulse parameters and the nonlinear response tensor of the nanoparticle. The results presented in this work offer new insights into the linear and nonlinear optical properties of nanoparticles with C2v symmetry. The demonstrated strong SHG response and efficient broadband THz generation hold great promise for applications in nonlinear spectroscopy, nanophotonics, and optoelectronics. The proposed theoretical framework also provides a valuable tool for understanding and predicting the nonlinear behavior of other related nanostructures.
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利用复杂性:L 形、纳米荧光体和劈环谐振器中的非线性光学现象
我们对表现出 C2v 对称性的等离子纳米粒子的光学特性进行了系统研究。我们特别分析了三种不同的几何构型:L 型、新月形和形似希腊字母 π 的分环谐振器。结果表明,这三种形状的谐振器都表现出与两个对称轴相关的两种突出等离子体模式。此外,在高频处还能观察到与四极模式相对应的广泛共振以及锐角引起的峰值。接下来,为了便于进行非线性分析,我们采用了半经典流体力学模型,其中明确考虑了电子压力项。该模型超越了标准的德鲁德描述,能够捕捉非局部和非线性效应。利用这一模型,我们可以严格检验这些纳米粒子在三种配置下的二阶角分辨非线性光学响应。我们考虑了两种泵浦机制,即连续波(CW)和脉冲激励。对于连续波抽运,我们探讨了二次谐波发生(SHG)的特性。我们获得了偏振和角度分辨的 SHG 光谱,发现它与纳米粒子的几何形状和入射波的偏振有很大关系。C2v 对称性在决定 SHG 信号的偏振态和选择规则方面起着关键作用。对于脉冲激发,我们讨论了由差频产生诱导的宽带太赫兹(THz)产生现象。结果表明,太赫兹发射光谱表现出独特的特征,这归因于纳米粒子的等离子共振和对称性。我们还研究了所产生的太赫兹波的极化,发现了与纳米粒子几何形状相关的有趣模式。为了获得更深入的见解,我们提出了一种与数值实验非常吻合的分析理论。该理论表明,太赫兹辐射的物理来源是二阶非线性易感性对基频脉冲中各种频率成分的混合。根据入射脉冲参数和纳米粒子的非线性响应张量推导出了远场太赫兹强度表达式。这项研究的结果为了解具有 C2v 对称性的纳米粒子的线性和非线性光学特性提供了新的视角。所展示的强烈 SHG 响应和高效宽带 THz 生成为非线性光谱学、纳米光子学和光电子学的应用带来了巨大前景。所提出的理论框架还为理解和预测其他相关纳米结构的非线性行为提供了宝贵的工具。
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