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等离子体纳米聚焦中的巨大非线性响应驱动高效四波混频。

Giant nonlinear response at a plasmonic nanofocus drives efficient four-wave mixing.

机构信息

Department of Physics, Imperial College London, London, SW7 2AZ, UK.

出版信息

Science. 2017 Dec 1;358(6367):1179-1181. doi: 10.1126/science.aao1467.

Abstract

Efficient optical frequency mixing typically must accumulate over large interaction lengths because nonlinear responses in natural materials are inherently weak. This limits the efficiency of mixing processes owing to the requirement of phase matching. Here, we report efficient four-wave mixing (FWM) over micrometer-scale interaction lengths at telecommunications wavelengths on silicon. We used an integrated plasmonic gap waveguide that strongly confines light within a nonlinear organic polymer. The gap waveguide intensifies light by nanofocusing it to a mode cross-section of a few tens of nanometers, thus generating a nonlinear response so strong that efficient FWM accumulates over wavelength-scale distances. This technique opens up nonlinear optics to a regime of relaxed phase matching, with the possibility of compact, broadband, and efficient frequency mixing integrated with silicon photonics.

摘要

高效的光频混合通常需要在较大的相互作用长度上进行积累,因为天然材料中的非线性响应本质上很微弱。由于需要相位匹配,这限制了混合过程的效率。在这里,我们报告了在硅的电信波长上,在微米级相互作用长度上实现高效的四波混合(FWM)。我们使用了一种集成的等离子体隙波导,该波导将光强烈限制在非线性有机聚合物中。间隙波导通过将光纳米聚焦到几十纳米的模式横截面上来增强光,从而产生如此强烈的非线性响应,使得高效的 FWM 可以在波长尺度的距离上积累。这项技术将非线性光学扩展到了放宽相位匹配的范围,有可能将与硅光子学集成的紧凑、宽带和高效的频率混合技术实现。

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