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Nonlinear Plasmonic Nanorulers

机译:非线性等离子纳米尺

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The evaluation of distances as small as few nanometers using optical waves is a very challenging task that can pave the way for the development of new applications in biotechnology and nanotechnology. In this article, we propose a new measurement method based on the control of the nonlinear optical response of plasmonic nanostructures by means of Fano resonances. It is shown that Fano resonances resulting from the coupling between a bright mode and a dark mode at the fundamental wavelength enable unprecedented and direct manipulation of the nonlinear electromagnetic sources at the nanoscale. In the case of second harmonic generation from gold nanodolmens, the different nonlinear sources distributions induced by the different coupling regimes are clearly revealed in the far-field distribution. Hence, the configuration of the nanostructure can be accurately determined in 3-dimensions by recording the wave scattered at the second harmonic wavelength. Indeed, the conformation of the different elements building the system is encoded in the nonlinear far-field distribution, making second harmonic generation a promising tool for reading 3-dimension plasmonic nanorulers. Furthemore, it is shown that 3-dimension plasmonic nanorulers can be implemented with simpler geometries than in the linear regime while providing complete information on the structure conformation, including the top nanobar position and orientation.
机译:使用光波评估小至几纳米的距离是一项非常具有挑战性的任务,可以为生物技术和纳米技术的新应用开发铺平道路。在本文中,我们提出了一种新的测量方法,该方法基于通过Fano共振控制等离子体纳米结构的非线性光学响应的​​方法。结果表明,由基波波长的亮模式和暗模式之间的耦合引起的Fano共振,可以对纳米级的非线性电磁源进行前所未有的直接处理。在金纳米晶产生二次谐波的情况下,在远场分布中清楚地揭示了由不同耦合机制引起的不同非线性源分布。因此,通过记录在二次谐波波长处散射的波,可以在三维中精确地确定纳米结构的构造。确实,构建系统的不同元素的构象被编码在非线性远场分布中,这使得二次谐波生成成为读取三维等离子纳米尺的有前途的工具。此外,显示出可以以比线性方案更简单的几何形状来实现三维等离子纳米尺,同时提供有关结构构象的完整信息,包括顶部纳米棒的位置和方向。

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