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Large-area 2D periodic crystalline silicon nanodome arrays on nanoimprinted glass exhibiting photonic band structure effects

机译:纳米压印玻璃上的大面积二维周期晶体硅纳米球阵列表现出光子带结构效应

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摘要

Two-dimensional silicon nanodome arrays are prepared on large areas up to 50 cm2 exhibiting photonic band structure effects in the near-infrared and visible wavelength region by downscaling a recently developed fabrication method based on nanoimprint-patterned glass, high-rate electron-beam evaporation of silicon, self-organized solid phase crystallization and wet-chemical etching. The silicon nanodomes, arranged in square lattice geometry with 300 nm lattice constant, are optically characterized by angular resolved reflection measurements, allowing the partial determination of the photonic band structure. This experimentally determined band structure agrees well with the outcome of three-dimensional optical finite-element simulations. A 16% photonic bandgap is predicted for an optimized geometry of the silicon nanodome arrays. By variation of the duration of the selective etching step, the geometry as well as the optical properties of the periodic silicon nanodome arrays can be controlled systematically.
机译:通过缩小最近开发的基于纳米压印图案的玻璃,高速率电子束蒸发的制造方法的尺寸,在高达50 cm2的大面积上制备二维硅纳米球阵列,该阵列在近红外和可见光波长区域表现出光子带结构效应。硅,自组织固相结晶和湿法化学蚀刻。硅纳米晶以300晶格常数的方晶格几何形状排列,通过角度分辨反射测量进行光学表征,从而可以部分确定光子能带结构。实验确定的能带结构与三维光学有限元模拟的结果非常吻合。预测将有16%的光子带隙可实现硅纳米球阵列的最佳几何形状。通过改变选择性蚀刻步骤的持续时间,可以系统地控制周期性硅纳米球阵列的几何形状以及光学性质。

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