首页> 外文会议>Conference on Metamaterials >Enhanced Transmission and Second Harmonic Generation from Subwavelength Slits on Metal Substrates
【24h】

Enhanced Transmission and Second Harmonic Generation from Subwavelength Slits on Metal Substrates

机译:在金属基板上的副波长狭缝增强的传输和二次谐波产生

获取原文

摘要

We theoretically investigate second harmonic generation that originates from the nonlinear, magnetic Lorentz force term from single and multiple apertures carved on thick, opaque metal substrates. The linear transmission properties of apertures on metal substrates have been previously studied in the context of the extraordinary transmission of light. The transmission process is driven by a number of physical mechanisms, whose characteristics and relative importance depend on the thickness of the metallic substrate, slit size, and slit separation. In this work we show that a combination of cavity effects and surface plasmon generation gives rise to enhanced second harmonic generation in the regime of extraordinary transmittance of the pump field. We have studied both forward and backward second harmonic generation conversion efficiencies as functions of the geometrical parameters, and how they relate to pump transmission efficiency. The resonance phenomenon is evident in the generated second harmonic signal, as conversion efficiency depends on the duration of incident pump pulse, and hence its bandwidth. Our results show that the excitation of tightly confined modes as well as the combination of enhanced transmission and nonlinear processes can lead to several potential new applications such as photo-lithography, scanning microscopy, and high-density optical data storage devices.
机译:理论上,从理论上调查来自单个和多个孔的非线性,磁洛伦兹力术起源于厚的不透明金属衬底上的第二次谐波产生。先前在光的非凡传输的背景下研究了金属基板上的孔的线性传动特性。传输过程由许多物理机构驱动,其特性和相对重要性取决于金属基板的厚度,狭缝尺寸和狭缝分离。在这项工作中,我们表明,腔效应和表面等离子体的组合在泵场的非凡透射率方面产生了增强的第二次谐波产生。我们研究了向前和向后的二次谐波产生的转换效率作为几何参数的功能,以及它们如何与泵传输效率相关。谐振现象在产生的二次谐波信号中是明显的,因为转换效率取决于入射泵脉冲的持续时间,因此其带宽。我们的结果表明,紧密狭窄的模式的激励以及增强型传输和非线性过程的组合可以导致诸如光光刻,扫描显微镜和高密度光学数据存储装置的几个潜在的新应用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号