论文标题

ENZ材料和各向异性:在金属/导电多层堆栈中纳米级的非线性光学相互作用增强

ENZ materials and Anisotropy: Enhancing Nonlinear Optical Interactions at the Nanoscale in Metal/Conducting-Oxide Multilayer Stacks

论文作者

Vincenti, Maria Antonietta, de Ceglia, Domenico, Scalora, Michael

论文摘要

Epsilon-Near-Zero材料是用于研究纳米级的电动力学和非线性光学过程的特殊候选物。我们证明,通过与金属和高度掺杂的导电氧化物交替,可以访问Epsilon-near-near-near-Zero状态,从而导致各向异性的复合纳米结构可显着增强非线性相互作用。使用两种独立和不同的计算技术,我们表明该结构可以将局部场强度提高近两个大小,这在很大程度上是由于有效的各向异性的开始。 The investigation of the multilayer nanostructure using a microscopic, hydrodynamic approach also sheds light on the roles of two competing contributions that are for the most part overlooked, but that can significantly modify linear and nonlinear responses of the structure: nonlocal effects, which blueshift the resulting resonance, and the hot electron nonlinearity, which redshifts the plasma frequency as the effective mass of free electrons increases作为入射功率密度的函数。最后,我们表明,即使没有二阶批量非线性,二阶非线性过程也通过分层结构显着增强。

Epsilon-near-zero materials are exceptional candidates for studying electrodynamics and nonlinear optical processes at the nanoscale. We demonstrate that by alternating a metal and a highly doped conducting-oxide, the epsilon-near-zero regime may be accessed resulting in an anisotropic, composite nanostructure that significantly enhances nonlinear interactions. Using two independent and different computation techniques we show that the structure can enhance the local field intensity by nearly two orders of magnitudes, in large part due to the onset of the effective anisotropy. The investigation of the multilayer nanostructure using a microscopic, hydrodynamic approach also sheds light on the roles of two competing contributions that are for the most part overlooked, but that can significantly modify linear and nonlinear responses of the structure: nonlocal effects, which blueshift the resulting resonance, and the hot electron nonlinearity, which redshifts the plasma frequency as the effective mass of free electrons increases as a function of incident power density. Finally, we show that, even in absence of second order bulk nonlinearity, second order nonlinear processes are also significantly enhanced by the layered structure.

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