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首页> 外文期刊>ACS applied materials & interfaces >Low-Temperature Solution-Processed Amorphous Titania Nanowire Thin Films for 1 cm(2) Perovskite Solar Cells
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Low-Temperature Solution-Processed Amorphous Titania Nanowire Thin Films for 1 cm(2) Perovskite Solar Cells

机译:低温溶液加工无定形二氧化钛纳米线薄膜1cm(2)钙钛矿太阳能电池

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The development of solution-processed inorganic amorphous electron-transporting layers (ETLs) is important for the future commercialization of perovskite solar cells (PSCs). The formation of such ETLs using low-temperature processing techniques will lower potential production costs and accommodate diverse substrate materials. Herein, a low-temperature (<150 degrees C) solution process forms amorphous titania nanowire (Am-TNW) thin films on fluorine-doped tin oxide conducting glass substrates. When applied as an ETL in PSCs, the Am-TNW layer achieves a higher average power conversion efficiency (18.3%) relative to that of a nanocrystalline anatase TNW (ATNW) layer obtained after high-temperature (500 degrees C) heating (16.7%). Compared to the ATNW counterparts, the Am-TNW-based PSCs exhibit inferior charge extraction across the TNW/CH3NH3PbI3 interface but more effectively suppress interfacial charge recombination. The insertion of a fullerene layer between the Am-TNW and CH3NH3PbI3 improves the charge extraction. The Am-TNW-based bilayer ETL gave optimal power conversion efficiencies of 20.3% and 19.0% for PSCs with 0.16 cm(2) and 1.00 cm(2) apertures, respectively. This is due to the concurrent advantages of enhanced light absorption, facilitated charge extraction, and reduced charge recombination. The use of the Am-TNW as an ETL in PSCs provides a facile, efficient way to increase the effectiveness of PSCs.
机译:溶液加工的无机非晶电子输送层(ETL)的发展对于未来钙钛矿太阳能电池(PSC)的未来商业化是重要的。使用低温处理技术的形成这种ETL将降低潜在的生产成本并适应不同的基材材料。这里,低温(<150℃)溶液方法在氟掺杂的氧化锡导电玻璃基板上形成无定形的二氧化钛纳米线(AM-TNW)薄膜。当在PSC中施加为ETL时,AM-TNW层相对于高温(500℃)加热后获得的纳米晶锐钛矿TNW(ATNW)层的纳米晶体锐钛矿TNW(ATNW)层的较高平均电力转换效率(18.3%)实现了更高的平均功率转换效率(18.3%)(16.7% )。与ATNW对应物相比,基于AM-TNW的PSC在TNW / CH3NH3PBI3界面上表现出低电荷提取,但更有效地抑制界面电荷重组。在AM-TNW和CH3NH3PBI3之间插入富勒烯层改善了电荷提取。基于AM-TNW的双层ETL分别给出了0.16cm(2)和1.00cm(2)孔的PSCs的最佳功率转化效率为20.3%和19.0%。这是由于增强光吸收,促进的电荷提取和减少电荷重组的同时优点。使用AM-TNW作为PSC中的ETL提供了一种容易,有效的方法来提高PSC的有效性。

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