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Fabrication and characterization of nanostructored titania films with integrated function from inorganic-organic hybrid materials

机译:无机-有机杂化材料制备纳米复合功能纳米结构二氧化钛薄膜及其表征

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Nanostructured titania films are of growing interest due to their application in future photovoltaic technologies. Therefore, a lot of effort has been put into the controlled fabrication and tailoring of titania nanostructures. The controlled sol-gel synthesis of titania, in particular in combination with block copolymer templates, is very promising because of its high control on the nanostructure, easy application and cheap processing possibilities. This tutorial review gives a short overview of the structural control of titania films gained by using templated sol-gel chemistry and shows how this approach is extended by the addition of further functionality to the films. Different expansions of the sol-gel templating are possible by the fabrication of gradient samples, by the addition of a homopolymer, by the combination with micro-fluidics and also by the application of novel precursors for low-temperature processing. Moreover, hierarchically structured titania films can be fabricated via the subsequent application of several sol-gel steps or via the inclusion of colloidal templates in a one-step process. Integrated function in the block copolymer used in the sol-gel synthesis allows for the fabrication of an integrated blocking layer or an integrated hole-conductor. Both approaches grant a one-step fabrication of two components of a working solar cell, which make them very promising towards a cheap solar cell production route. Looking to the complete solar cell, the top contact is also of great importance as it influences the function of the whole solar cell. Thus, the mechanisms acting in the top contact formation are also reviewed. For all these aspects, characterization techniques that allow for a structural investigation of nanostructures inside the active layers are important. Therefore, the characterization techniques that are used in real space as well as in reciprocal space are explained shortly as well.
机译:纳米结构的二氧化钛膜由于其在未来的光伏技术中的应用而受到越来越多的关注。因此,在二氧化钛纳米结构的可控制造和定制方面已经付出了很多努力。二氧化钛的可控溶胶-凝胶合成,特别是与嵌段共聚物模板的结合,因其对纳米结构的高度控制,易于应用和廉价的加工可能性而非常有前途。本教程概述简要介绍了通过使用模板化溶胶-凝胶化学方法获得的二氧化钛薄膜的结构控制,并展示了如何通过向薄膜中添加更多功能来扩展该方法。通过制备梯度样品,通过添加均聚物,通过与微流体的结合以及通过将新型前体用于低温加工,可以实现溶胶-凝胶模板的不同扩展。而且,可以通过随后应用几个溶胶-凝胶步骤或通过在一步法中包括胶体模板来制造分层结构的二氧化钛膜。在溶胶-凝胶合成中使用的嵌段共聚物中的集成功能允许集成的阻挡层或集成的空穴导体的制造。两种方法都可以一步法制造工作中的太阳能电池的两个组件,这使得它们非常有可能朝着廉价的太阳能电池生产路线发展。对于整个太阳能电池,顶部接触面也很重要,因为它会影响整个太阳能电池的功能。因此,还讨论了在顶部接触形成中起作用的机理。对于所有这些方面,允许对有源层内部的纳米结构进行结构研究的表征技术很重要。因此,还将简要说明在实际空间以及对等空间中使用的表征技术。

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