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Slow photon amplification of gas-phase ethanol photo-oxidation in titania inverse opal photonic crystals

机译:二氧化钛反蛋白石光子晶体中气相乙醇光氧化的慢光子放大

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Here we describe the successful fabrication of six titania inverse opal (TiO2 IO) photocatalysts with fcc [1 1 1] pseudo photonic band gaps (PBGs) tuned to span the UV-vis region. Photocatalysts were fabricated by a colloidal crystal templating and sol-gel approach - a robust and highly applicable bottom-up scheme which allowed for precise control over the geometric and optical properties of the TiO2 IO photocatalysts. Optical properties of the TiO2 IO thin films were investigated in detail by UV-vis transmittance and reflectance measurements. The PBG along the fcc[1111 direction in the TiO2 IOs was dependent on the inter-planar spacing in the [1 1 1] direction, the incident angle of light and the refractive index of the medium filling the macropores in the IOs, in agreement with a modified Bragg's law expression. Calculated photonic band structures for the photocatalysts revealed a PBG along the Gamma -> L direction at alpha/lambda similar to 0.74, in agreement with the experimental optical data. By coupling the low frequency edge of the PBG along the [1 1 1] direction with the electronic absorption edge of anatase TiO2, a two-fold enhancement in the rate of gas phase ethanol photo-oxidation in air was achieved. This enhancement appears to be associated with a 'slow photon' effect that acts to both enhance TiO2 absorption and inhibit spontaneous emission (i.e. suppress electron-hole pair recombination). (C) 2016 Elsevier B.V. All rights reserved.
机译:在这里,我们描述了六种二氧化钛反蛋白石(TiO2 IO)光催化剂的成功制造,这些催化剂具有经过调节以跨越UV-vis区域的fcc [1 1 1]伪光子带隙(PBG)。光催化剂是通过胶体晶体模板和溶胶-凝胶方法制造的-一种稳健且高度适用的自下而上的方案,可以精确控制TiO2 IO光催化剂的几何和光学性质。通过紫外可见透射率和反射率测量,详细研究了TiO2 IO薄膜的光学性能。沿着TiO2 IO的fcc [1111方向]的PBG取决于[1 1 1]方向的平面间距,光的入射角和填充IO中大孔的介质的折射率,这是一致的修改了布拉格定律表达式。计算出的光催化剂的光子能带结构表明,沿着Gamma-> L方向的PBG在α/λ处接近0.74,与实验光学数据一致。通过将PBG沿[1 1 1]方向的低频边缘与锐钛矿型TiO2的电子吸收边缘耦合,可以实现空气中气相乙醇光氧化速率的两倍提高。这种增强似乎与“慢光子”效应有关,该效应既增强了TiO2的吸收又抑制了自发发射(即抑制了电子-空穴对的复合)。 (C)2016 Elsevier B.V.保留所有权利。

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