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Photochemical energy conversion: from molecular dyads to solar cells

机译:光化学能转换:从分子二重体到太阳能电池

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Photochemical approaches to solar energy conversion are currently making rapid progress, increasing not only academic but also commercial interest in molecular-based photovoltaic solar cells. This progress has been achieved not only by increased understanding of the physics and physical chemistry of device function but also through advances in chemical and materials synthesis and processing, which now allows the design and fabrication of increasingly sophisticated device structures organised on the nanometer length scale. In this feature article, we review some progress in this field, focusing in particular upon the electron-transfer dynamics which underlie the function of dye-sensitised, nanocrystalline solar cells. The article starts by building upon the parallels between the function of such devices and the function of simple donor/acceptor molecular systems in solution. We then go on to discuss the optimisation of device function, and in particular the use of self-assembly-based strategies to control interfacial electron-transfer kinetics.
机译:目前,光化学方法用于太阳能转化正迅速发展,不仅在学术上而且在商业上对基于分子的光伏太阳能电池也产生了兴趣。不仅通过对设备功能的物理和物理化学的深入了解,而且还通过化学和材料合成与加工的进步,实现了这一进步,这使得现在可以设计和制造以纳米长度尺度组织的越来越复杂的设备结构。在这篇专题文章中,我们回顾了该领域的一些进展,特别是着眼于染料敏化纳米晶太阳能电池功能的电子转移动力学。本文从建立这种装置的功能与溶液中简单供体/受体分子系统的功能之间的相似性开始。然后,我们继续讨论设备功能的优化,尤其是使用基于自组装的策略来控制界面电子转移动力学。

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