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Extraordinarily transparent compact metallic metamaterials

机译:超透明的紧凑金属超材料

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The design of achromatic optical components requires materials with high transparency and low dispersion. We show that although metals are highly opaque, densely packed arrays of metallic nanoparticles can be more transparent to infrared radiation than dielectrics such as germanium, even when the arrays are over 75% metal by volume. Such arrays form effective dielectrics that are virtually dispersion-free over ultra-broadband ranges of wavelengths from microns up to millimeters or more. Furthermore, the local refractive indices may be tuned by altering the size, shape, and spacing of the nanoparticles, allowing the design of gradient-index lenses that guide and focus light on the microscale. The electric field is also strongly concentrated in the gaps between the metallic nanoparticles, and the simultaneous focusing and squeezing of the electric field produces strong 'doubly-enhanced' hotspots which could boost measurements made using infrared spectroscopy and other non-linear processes over a broad range of frequencies.
机译:消色差光学组件的设计需要具有高透明度和低色散的材料。我们显示,尽管金属是高度不透明的,但是即使纳米粒子的体积含量超过75%,金属纳米粒子的密集排列阵列也比电介质(例如锗)对红外辐射更透明。这样的阵列形成有效的电介质,该有效的电介质在从微米到毫米甚至更大的波长的超宽带范围内几乎没有色散。此外,可以通过改变纳米粒子的大小,形状和间距来调整局部折射率,从而允许设计将折射率引导并聚焦在微尺度上的梯度折射率透镜。电场也强烈集中在金属纳米粒子之间的间隙中,并且电场的同时聚焦和挤压会产生强大的“双增强”热点,这可能会提高使用红外光谱和其他非线性过程进行的测量范围频率范围。

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