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Rational design of metallic nanocavities for resonantly enhanced four-wave mixing

机译:用于共振增强四波混合的金属纳米腔的合理设计

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摘要

Optimizing the shape of nanostructures and nano-antennas for specific optical properties has evolved to be a very fruitful activity. With modern fabrication tools a large variety of possibilities is available for shaping both nanoparticles and nanocavities; in particular nanocavities in thin metal films have emerged as attractive candidates for new metamaterials and strong linear and nonlinear optical systems. Here we rationally design metallic nanocavities to boost their Four-Wave Mixing response by resonating the optical plasmonic resonances with the incoming and generated beams. The linear and nonlinear optical responses as well as the propagation of the electric fields inside the cavities are derived from the solution of Maxwell’s equations by using the 3D finite-differences time domain method. The observed conversion-efficiency of near-infrared to visible light equals or surpasses that of BBO of equivalent thickness. Implications to further optimization for efficient and broadband ultrathin nonlinear optical materials are discussed.
机译:针对特定的光学特性优化纳米结构和纳米天线的形状已发展为一项非常富有成果的活动。借助现代制造工具,可以使用多种可能性来成型纳米颗粒和纳米腔。特别是金属薄膜中的纳米腔已成为新的超材料和强大的线性和非线性光学系统的有吸引力的候选者。在这里,我们合理设计金属纳米腔,以通过入射和产生的光束共振光学等离子体共振来增强其四波混频响应。通过使用3D有限差分时域方法,根据麦克斯韦方程组的解,得出了线性和非线性光学响应以及腔体内电场的传播。观察到的近红外到可见光的转换效率等于或超过等效厚度的BBO。讨论了进一步优化高效和宽带超薄非线性光学材料的意义。

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