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Influence of Nitrogen Doping on Device Operation for TiO2-Based Solid-State Dye-Sensitized Solar Cells: Photo-Physics from Materials to Devices

机译:氮掺杂对TiO2基固态染料敏化太阳能电池器件操作的影响:从材料到器件的光物理

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摘要

Solid-state dye-sensitized solar cells (ssDSSC) constitute a major approach to photovoltaic energy conversion with efficiencies over 8% reported thanks to the rational design of efficient porous metal oxide electrodes, organic chromophores, and hole transporters. Among the various strategies used to push the performance ahead, doping of the nanocrystalline titanium dioxide (TiO2) electrode is regularly proposed to extend the photo-activity of the materials into the visible range. However, although various beneficial effects for device performance have been observed in the literature, they remain strongly dependent on the method used for the production of the metal oxide, and the influence of nitrogen atoms on charge kinetics remains unclear. To shed light on this open question, we synthesized a set of N-doped TiO2 nanopowders with various nitrogen contents, and exploited them for the fabrication of ssDSSC. Particularly, we carefully analyzed the localization of the dopants using X-ray photo-electron spectroscopy (XPS) and monitored their influence on the photo-induced charge kinetics probed both at the material and device levels. We demonstrate a strong correlation between the kinetics of photo-induced charge carriers probed both at the level of the nanopowders and at the level of working solar cells, illustrating a direct transposition of the photo-physic properties from materials to devices.
机译:固态染料敏化太阳能电池(ssDSSC)构成了光伏能量转换的一种主要方法,由于合理设计了有效的多孔金属氧化物电极,有机发色团和空穴传输剂,其效率超过8%。在用来提高性能的各种策略中,通常建议对纳米晶二氧化钛(TiO2)电极进行掺杂,以将材料的光活性扩展到可见光范围内。然而,尽管在文献中已经观察到对器件性能的各种有益效果,但是它们仍然强烈依赖于用于生产金属氧化物的方法,并且氮原子对电荷动力学的影响仍然不清楚。为了阐明这个悬而未决的问题,我们合成了一组氮含量不同的N掺杂TiO2纳米粉,并将其用于ssDSSC的制备。特别是,我们使用X射线光电子能谱(XPS)仔细分析了掺杂剂的定位,并监测了它们对在材料和器件水平探测到的光诱导电荷动力学的影响。我们证明了在纳米粉末水平和工作太阳能电池水平上探测到的光诱导电荷载流子的动力学之间有很强的相关性,说明了光物理性质从材料到设备的直接转换。

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