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Titania Photonic Crystals with Precise Photonic Band Gap Position via Anodizing with Voltage versus Optical Path Length Modulation

机译:通过电压与光程长度调制进行阳极氧化,具有精确的光子带隙位置的二氧化钛光子晶体

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Photonic crystals based on titanium oxide are promising for optoelectronic applications, for example as components of solar cells and photodetectors. These materials attract great research attention because of the high refractive index of TiO 2 . One of the promising routes to prepare photonic crystals based on titanium oxide is titanium anodizing at periodically changing voltage or current. However, precise control of the photonic band gap position in anodic titania films is a challenge. To solve this problem, systematic data on the effective refractive index of the porous anodic titanium oxide are required. In this research, we determine quantitatively the dependence of the effective refractive index of porous anodic titanium oxide on the anodizing regime and develop a model which allows one to predict and, therefore, control photonic band gap position in the visible spectrum range with an accuracy better than 98.5%. The prospects of anodic titania photonic crystals implementation as refractive index sensors are demonstrated.
机译:基于氧化钛的光子晶体有望用于光电应用,例如作为太阳能电池和光电探测器的组件。这些材料由于TiO 2的高折射率而引起了极大的研究关注。制备基于氧化钛的光子晶体的有前途的途径之一是在周期性变化的电压或电流下进行阳极氧化。然而,精确控制阳极二氧化钛膜中的光子带隙位置是一个挑战。为了解决该问题,需要关于多孔阳极氧化钛的有效折射率的系统数据。在这项研究中,我们定量地确定了多孔阳极氧化钛的有效折射率对阳极氧化机制的依赖性,并开发了一种模型,该模型可以预测并因此以更好的精度控制可见光谱范围内的光子带隙位置。比98.5%。阳极二氧化钛光子晶体实现为折射率传感器的前景已得到证明。

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