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Low-Temperature Crystalline Titanium Dioxide by Atomic Layer Deposition for Dye-Sensitized Solar Cells

机译:染料敏化太阳能电池的原子层沉积低温结晶二氧化钛

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摘要

Low-temperature processing of dye-sensitized solar cells (DSCs) is crucial to enable commercialization with low-cost, plastic substrates. Prior studies have focused on mechanical compression of premade particles on plastic or glass substrates; however, this did not yield sufficient interconnections for good carrier transport. Furthermore, such compression can lead to more heterogeneous porosity. To circumvent these problems, we have developed a low-temperature processing route for photoanodes where crystalline TiO2 is deposited onto well-defined, mesoporous templates. The TiO2 is grown by atomic layer deposition (ALD), and the crystalline films are achieved at a growth temperature of 200 °C. The ALD TiO2 thickness was systematically studied in terms of charge transport and performance to lead to optimized photovoltaic performance. We found that a 15 nm TiO2 overlayer on an 8 μm thick SiO2 film leads to a high power conversion efficiency of 7.1% with the state-of-the-art zinc porphyrin sensitizer and cobalt bipyridine redox mediator.
机译:染料敏化太阳能电池(DSC)的低温处理对于实现低成本塑料基板的商业化至关重要。先前的研究集中在机械压缩塑料或玻璃基板上的预制颗粒。但是,这不能产生足够的互连来实现良好的载流子传输。此外,这种压缩可导致更多的非均质孔隙度。为了解决这些问题,我们开发了一种用于光阳极的低温处理方法,其中将结晶TiO2沉积在定义明确的中孔模板上。通过原子层沉积(ALD)生长TiO2,并在200°C的生长温度下获得结晶膜。对ALD TiO2厚度进行了电荷传输和性能方面的系统研究,以优化光伏性能。我们发现,使用最先进的锌卟啉敏化剂和钴联吡啶氧化还原介体,在8μm厚的SiO2膜上的15 nm TiO2覆盖层可实现7.1%的高功率转换效率。

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