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Light management in TiO_2 thin films integrated with Au plasmonic nanoparticles

机译:结合Au等离子体纳米粒子的TiO_2薄膜的光管理。

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The light-harvesting properties of metal oxide thin films can be remarkably increased by the introduction of plasmonic nanostructures, leading to higher efficiencies in photovoltaic or photoelectrochemical devices. In the prototypical material combination, Au-TiO2, nano- and mesoscale porosity of TiO2 is desirable to improve not only the light-harvesting, but also the available surface area for chemical reactions. Moreover, great attention has been given to the control of size and shape of Au nanoparticles (NPs) to tune the overall optical properties of the film. In this work, we investigate the optical properties of composite Au-TiO2 films exhibiting remarkable light scattering properties. TiO2 is characterized by a tree-like hierarchical morphology produced by pulsed laser deposition, and two different configurations for Au integration, namely Au on top and at the bottom of TiO2, are explored while varying the size of Au NPs. The hierarchical oxide morphology allows to achieve superior scattering properties after the combination with Au NPs with respect to films obtained from a commercial paste deposition. Both the Au-top and Au-bottom configurations enable to tune the plasmonic properties of Au NPs. Specifically, outstanding scattering properties are exhibited by the composite TiO2 filmgrown on top of large (similar to 100 nm) Au NPs. These results show the potential interest of employing such integrated films as photoanodes in dye-sensitized or perovskite-based solar cells, or in photoelectrochemical cells for water splitting. An analogous approach can be employed for alternative materials, both considering the plasmonic structures as well as the semiconductor layer.
机译:通过引入等离子体纳米结构,可以显着提高金属氧化物薄膜的集光性能,从而提高光伏或光电化学装置的效率。在原型材料组合中,Au-TiO2,TiO2的纳米和中尺度孔隙率不仅需要改善集光性能,而且还可以改善化学反应的可用表面积。而且,已经极大地关注了对金纳米颗粒(NP)的尺寸和形状的控制,以调节膜的整体光学性能。在这项工作中,我们研究了具有显着光散射特性的复合Au-TiO2薄膜的光学特性。 TiO2的特征在于脉冲激光沉积产生的树状分层形态,在改变Au NP尺寸的同时,探索了两种不同的Au集成构型,即TiO2顶部和底部的Au。相对于从商业糊剂沉积获得的膜,分层的氧化物形态允许与Au NPs结合后实现优异的散射性能。 Au-top和Au-bottom配置均可调整Au NP的等离子体特性。具体而言,通过在大(类似于100 nm)Au NPs顶部生长的复合TiO2薄膜表现出出色的散射性能。这些结果表明在染料敏化或钙钛矿基太阳能电池或光电化学电池中使用此类集成膜作为光阳极的潜在兴趣,以用于水分解。考虑到等离子体结构以及半导体层,可以将类似方法用于替代材料。

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