论文标题

导电氧化物的电动力学:强度依赖性各向异性,有效介电常数的重建和谐波产生

Electrodynamics of Conductive Oxides: Intensity-dependent anisotropy, reconstruction of the effective dielectric constant, and harmonic generation

论文作者

Scalora, Michael, Trull, Jose, de Ceglia, Domenico, Vincenti, Maria Antonietta, Akozbek, Neset, Coppens, Zachary, Rodríguez-Suné, Laura, Cojocaru, Crina

论文摘要

我们研究线性和非线性方向上的二氧化物氧化物纳米层中的电磁脉冲传播。我们使用本构关系来重建介质的有效介电常数,并表明非本地效应会引起额外的吸收共振和各向异性介电响应:沿纵向和横向有效的介电功能在沿繁殖方向沿纵向和横向有效的介电功能不同,并且随着ePsilon-near-near-near-near-near-near-near-near-nece crostention的良好态度而增加。我们预测,热载体会引起血浆频率的动态红移,以及有效的非线性分散曲线的相应翻译,可用于预测和量化非线性折射率变化,这是入射激光峰功率密度的函数。我们的结果表明,大型非线性折射率变化可能会发生变化,而无需与等离子谐振器相对情侣。在足够大的激光脉冲强度下,我们预测了光学双重性的发作,而存在于游离电子气体的纵向振荡引起的附加泵吸收共振的存在,这让位于第二和第三个谐波光谱中的相应共振。现实的繁殖模型是阐明在动力学中起着基本作用的基本物理机制的关键。

We study electromagnetic pulse propagation in an indium tin oxide nanolayer in the linear and nonlinear regimes. We use the constitutive relations to reconstruct the effective dielectric constant of the medium, and show that nonlocal effects induce additional absorption resonances and anisotropic dielectric response: longitudinal and transverse effective dielectric functions are modulated differently along the propagation direction, and display different epsilon-near-zero crossing points with a discrepancy that increases with increasing intensity. We predict that hot carriers induce a dynamic redshift of the plasma frequency and a corresponding translation of the effective nonlinear dispersion curves that can be used to predict and quantify nonlinear refractive index changes as a function of incident laser peak power density. Our results suggest that large, nonlinear refractive index changes can occur without the need for epsilon-near-zero modes to couple with plasmonic resonators. At sufficiently large laser pulse intensities, we predict the onset of optical bistability, while the presence of additional pump absorption resonances that arise from longitudinal oscillations of the free electron gas give way to corresponding resonances in the second and third harmonic spectra. A realistic propagation model is key to unraveling the basic physical mechanisms that play a fundamental role in the dynamics.

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