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Fundamental Limits to the Refractive Index of Transparent Optical Materials

机译:透明光学材料折射率的基本限制

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Increasing the refractive index available for optical and nanophotonic systems opens new vistas for design, for applications ranging from broadband metalenses to ultrathin photovoltaics to high-quality-factor resonators. In this work, fundamental limits to the refractive index of any material are derived, given only the underlying electron density and either the maximum allowable dispersion or the minimum bandwidth of interest. In the realm of small to modest dispersion, the bounds are closely approached and not surpassed by a wide range of natural materials, showing that nature has already nearly reached a Pareto frontier for refractive index and dispersion. Conversely, for narrow-bandwidth applications, nature does not provide the highly dispersive, high-index materials that the bounds suggest should be possible. The theory of composites to identify metal-based metamaterials that can exhibit small losses and sizeable increases in refractive index over the current best materials is used. Moreover, if the "elusive lossless metal" can be synthesized, it is shown that it would enable arbitrarily high refractive index in the high-dispersion regime, nearly achieving the bounds even at refractive indices of 100 and beyond at optical frequencies.
机译:增加光学和纳米光电系统可用的折射率开辟了用于设计的新VISTAS,用于从宽带金属纤维到超薄光伏到高质量因子谐振器的应用。在这项工作中,仅衍生出任何材料的折射率的基本限制,仅给出潜在的电子密度和最大允许的分散或感兴趣的最小带宽。在小于适度分散的境界中,界限密切接近,不超过各种天然材料,表明大自然已经几乎达到了折射率和分散的帕累托前沿。相反,对于窄带宽的应用,性质不提供应有的界限的高度分散性的高索引材料。使用复合材料理论,用于鉴定可以表现出小损失和相当大的折射率在当前最佳材料上折射率增加的金属基超材料。此外,如果可以合成“难以置的无损金属”,则表明它将在高分散体状态下进行任意高折射率,即使在100和超过光学频率的折射率下也几乎实现了界限。

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