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How Can a Resonant Nanogap Enhance Optical Fields by Many Orders of Magnitude?

机译:共振纳米间隙如何将光场增强许多数量级?

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摘要

In a resonant cavity or a gap, with a nanometer-sized width and depth on an Au surface, filled up with SiO$_2$, the electric field intensity is enhanced by many orders of magnitude by the illumination of a plane wave. Graphical representations of power flow are employed to elucidate how the cavity harvests energy from the incident wave inside to give rise to the enormous field enhancement. The power income from the incident fields into the cavity and the power expense as scattered fields and absorption are discussed on the basis of three Poynting vectors, which correspond to the extinction, scattering, and absorption cross sections. The streamlines of the Poynting vectors distinctly visualize that the cavity collects light from an area much wider than its own geometrical width. In addition, the presence of an alternating power flow accumulated in the cavity for a certain time duration is unveiled on the basis of the real and the imaginary parts of the complex Poynting vector. Both the spatial squeezing and the temporal accumulation contribute to the high power density in the cavity. A clear insight into the underlying physics acquired on the basis of a pictorial understanding is expected to play a critical role in designing a plasmon nanocavity with a higher field enhancement in a rational way.
机译:在共振腔或间隙中,在Au表面上具有纳米尺寸的宽度和深度,并填充有SiO $ _2 $,该电场强度通过平面波的照射而提高了多个数量级。功率流的图形表示用于阐明腔体如何从内部的入射波中收集能量以产生巨大的场增强。在三个Poynting向量的基础上讨论了从入射场进入腔体的功率收入以及作为散射场和吸收的功率消耗,它们对应于消光,散射和吸收截面。 Poynting向量的流线清晰地显示出腔体从比其自身几何宽度宽得多的区域收集光。此外,根据复Poynting向量的实部和虚部,揭示了在腔体中累积一定时间的交流电的存在。空间压缩和时间累积都有助于空腔中的高功率密度。在基于图形的理解基础上获得的对基础物理学的清晰见识有望在以合理的方式设计具有更高场增强的等离子体激元纳米腔中发挥关键作用。

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