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Strongly enhanced light trapping in a two-dimensional silicon nanowire random fractal array

机译:二维硅纳米线随机分形阵列中的强捕获光

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摘要

We report on the unconventional optical properties exhibited by a two-dimensional array of thin Si nanowires arranged in a random fractal geometry and fabricated using an inexpensive, fast and maskless process compatible with Si technology. The structure allows for a high light-trapping efficiency across the entire visible range, attaining total reflectance values as low as 0.1% when the wavelength in the medium matches the length scale of maximum heterogeneity in the system. We show that the random fractal structure of our nanowire array is responsible for a strong in-plane multiple scattering, which is related to the material refractive index fluctuations and leads to a greatly enhanced Raman scattering and a bright photoluminescence. These strong emissions are correlated on all length scales according to the refractive index fluctuations. The relevance and the perspectives of the reported results are discussed as promising for Si-based photovoltaic and photonic applications.
机译:我们报告了由以随机分形几何形状排列并使用与Si技术兼容的廉价,快速和无掩模工艺制造的细硅纳米线的二维阵列所展现的非常规光学特性。该结构可在整个可见光范围内实现高光捕获效率,当介质中的波长与系统中最大异质性的长度尺度相匹配时,总反射率值可低至0.1%。我们表明,我们的纳米线阵列的随机分形结构负责强的面内多重散射,这与材料折射率波动有关,并导致拉曼散射和明亮的光致发光大大增强。这些强辐射根据折射率波动在所有长度范围内相关。讨论的结果的相关性和观点对于基于硅的光伏和光子应用很有希望。

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