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Quantum-chemical calculations of dye-sensitized semiconductor nanocrystals

机译:染料敏化半导体纳米晶体的量子化学计算

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Quantum chemical calculations providing detailed information of dye-sensitized semiconductor nanocrystals are presented. The calculations are used to elucidate both structural and electronic properties of photoelectrochemical devices, such as environmentally friendly Dye-Sensitized Solar Cells (DSSCs), at the molecular level. Quantum chemical calculations have recently been performed on both organic and organometallic dye molecules attached to titanium dioxide (TiO_2) nanocrystals via different anchor and spacer groups. Strategies to make accurate quantum chemical calculations, e.g. at the DFT level of theory, on increasingly realistic models of such dye-sensitized semiconductor interfaces are presented. The ability of different anchor and spacer groups to act as mediators of ultrafast photo-induced electron injection from the dye molecules into the semiconductor nanocrystals is, in particular, discussed in terms of calculated electronic coupling strengths, and direct comparisons with experimental information are made whenever possible. Progress in the development of multi-scale simulation techniques using so called reactive force fields is illustrated for dye-sensitized solar cell systems.
机译:量子化学计算提供了染料敏化的半导体纳米晶体的详细信息。该计算用于在分子水平上阐明光电化学装置(例如环保型染料敏化太阳能电池(DSSC))的结构和电子性质。最近已经对通过不同的锚定基团和间隔基团连接到二氧化钛(TiO_2)纳米晶体的有机和有机金属染料分子进行了量子化学计算。进行精确量子化学计算的策略,例如在DFT的理论水平上,提出了这种染料敏化半导体界面的日益现实的模型。特别是,根据计算出的电子耦合强度来讨论不同的锚定基团和间隔基团充当从染料分子向半导体纳米晶体中超快光诱导电子注入的介质的能力,并在任何时候与实验信息进行直接比较。可能。说明了用于染料敏化太阳能电池系统的使用所谓反作用力场的多尺度仿真技术的开发进展。

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