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High-quality photonic crystals with a nearly complete band gap obtained by direct inversion of woodpile templates with titanium dioxide

机译:通过直接将木桩模板与二氧化钛倒置获得具有几乎完整带隙的高质量光子晶体

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摘要

Photonic crystal materials are based on a periodic modulation of the dielectric constant on length scales comparable to the wavelength of light. These materials can exhibit photonic band gaps; frequency regions for which the propagation of electromagnetic radiation is forbidden due to the depletion of the density of states. In order to exhibit a full band gap, 3D PCs must present a threshold refractive index contrast that depends on the crystal structure. In the case of the so-called woodpile photonic crystals this threshold is comparably low, approximately 1.9 for the direct structure. Therefore direct or inverted woodpiles made of high refractive index materials like silicon, germanium or titanium dioxide are sought after. Here we show that, by combining multiphoton lithography and atomic layer deposition, we can achieve a direct inversion of polymer templates into TiO2 based photonic crystals. The obtained structures show remarkable optical properties in the near-infrared region with almost perfect specular reflectance, a transmission dip close to the detection limit and a Bragg length comparable to the lattice constant.
机译:光子晶体材料基于介电常数在与光的波长相当的长度尺度上的周期性调制。这些材料可能会出现光子带隙。由于状态密度的耗尽,禁止电磁辐射传播的频率区域。为了表现出整个带隙,3D PC必须呈现取决于晶体结构的阈值折射率对比度。在所谓的木桩光子晶体的情况下,该阈值相对较低,对于直接结构而言约为1.9。因此,寻求由高折射率材料如硅,锗或二氧化钛制成的直接或倒置木桩。在这里,我们表明,通过结合多光子光刻和原子层沉积,我们可以将聚合物模板直接转化为基于TiO2的光子晶体。所获得的结构在近红外区域具有近乎完美的镜面反射率,接近检测极限的透射率下降以及与晶格常数相当的布拉格长度。

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