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首页> 外文期刊>Nanoscale Research Letters >In Situ-Formed and Low-Temperature-Deposited Nb:TiO 2 Compact-Mesoporous Layer for Hysteresis-Less Perovskite Solar Cells with High Performance
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In Situ-Formed and Low-Temperature-Deposited Nb:TiO 2 Compact-Mesoporous Layer for Hysteresis-Less Perovskite Solar Cells with High Performance

机译:以原位形成的和低温沉积的Nb:TiO 2 用于滞后的滞后层,具有高性能的滞后植物太阳能电池

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Recently, reported perovskite solar cells (PSCs) with high power conversion efficiency (PCE) are mostly based on mesoporous structures containing mesoporous titanium oxide (TiO_(2)) which is the main factor to reduce the overall hysteresis. However, existing fabrication approaches for mesoporous TiO_(2)generally require a high-temperature annealing process. Moreover, there is still a long way to go for improvement in terms of increasing the electron conductivity and reducing the carrier recombination. Herein, a facile one-step, in situ, and low-temperature method was developed to prepare an Nb:TiO_(2)compact-mesoporous layer which served as both scaffold and electron transport layer (ETL) for PSCs. The Nb:TiO_(2)compact-mesoporous ETL-based PSCs exhibit suppressed hysteresis, which is attributed to the synergistic effect of the increased interface surface area caused by nano-pin morphology and the improved carrier transportation caused by Nb doping. Such a high-quality compact-mesoporous layer allows the PSCs assembled using optimized 2% Nb-doped TiO_(2)to achieve a remarkable PCE of 19.74%. This work promises an effective approach for creating hysteresis-less and high-efficiency PSCs based on compact-mesoporous structures with lower energy consumption and cost.
机译:最近,报告具有高功率转换效率(PSC)的钙钛矿太阳能电池(PSC)主要基于含有介孔氧化钛(TiO_(2))的介孔结构,这是减少总滞后的主要因素。然而,用于中孔TiO_(2)的现有制造方法通常需要高温退火过程。此外,在增加电子电导率和减少载体重组方面,仍然存在很长的路要改进。在此,开发了一种容易的一步,原位和低温方法以制备Nb:TiO_(2)致密 - 中孔层,其用作PSC的支架和电子传输层(ETL)。 Nb:TiO_(2)基于紧凑的基于型ETL的PSC表现出抑制滞后,其归因于由纳米引脚形态和由Nb掺杂引起的改进的载体运输引起的增加的界面表面积的协同效应。这种高质量的紧凑型介孔层允许PSC使用优化的2%NB掺杂TiO_(2)组装,以实现19.74%的显着PCE。这项工作有助于基于较低能量消耗和成本的紧凑型介孔结构来创建滞后和高效PSC的有效方法。

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