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首页> 外文期刊>Applied Surface Science >Core-shell structure of ZnO@TiO_2 nanorod arrays as electron transport layer for perovskite solar cell with enhanced efficiency and stability
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Core-shell structure of ZnO@TiO_2 nanorod arrays as electron transport layer for perovskite solar cell with enhanced efficiency and stability

机译:ZnO @ TiO_2纳米棒阵列的核-壳结构作为钙钛矿太阳能电池的电子传输层,具有更高的效率和稳定性

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摘要

The serious charge recombination originates from the thermal instability of perovskite/ZnO and the low electron injection efficiency of ZnO. It is the important issue to be improved in ZnO-based perovskite solar cell (PSC). In this paper, the core-shell structure of ZnO@TiO2 nanorod arrays (NRs) is designed as electron transport layer (ETL) for PSC. A novel synthesis of PSC based on ZnO@TiO2 NRs in ambient atmosphere was proposed. The photoelectric conversion efficiency (PCE) of the core-shell device is 50.46% higher than that of common ZnO nanorod device. This is due to the improved interface contact between nanorods and perovskite layer, and the suppression of charge recombination. The PCE of the TiO2 modified device shows still more than 83% after 168 h, compared to that of the pristine one which decreased to less than 50%. This is due to TiO2 modification which can serve as a buffer layer to avoid direct contact between perovskite films and ZnO NRs, and inhibits the decomposition of perovskite film on ZnO NRs. Both theoretical calculation and Raman test result show that the interaction between CH3 NH3 PbI3 and TiO2 is mainly the bonding between I atoms of PbI2 slabs and Ti atoms of the TiO2 surface at PbI2/TiO2 interface. The mechanism of carrier transport and recombination in the PSC based on ZnO and ZnO@TiO2 NRs was also discussed. These results highlight the potential of ZnO@TiO2 NRs as ETL for all-solid-state PSC with high efficiency and good stability.
机译:严重的电荷复合起因于钙钛矿/ ZnO的热不稳定性和ZnO的低电子注入效率。这是在基于ZnO的钙钛矿太阳能电池(PSC)中需要改进的重要问题。本文将ZnO @ TiO2纳米棒阵列(NRs)的核-壳结构设计为PSC的电子传输层(ETL)。提出了一种基于ZnO @ TiO2 NRs的新型PSC合成方法。核-壳器件的光电转换效率(PCE)比普通的ZnO纳米棒器件高50.46%。这是由于改善了纳米棒与钙钛矿层之间的界面接触,并抑制了电荷复合。 TiO 2改性装置的PCE在168小时后仍显示超过83%,而原始的PCE下降到不足50%。这是由于TiO2改性可以用作缓冲层,从而避免钙钛矿薄膜与ZnO NR之间的直接接触,并抑制ZnO NRs上钙钛矿薄膜的分解。理论计算和拉曼试验结果均表明,CH3 NH3 PbI3与TiO2的相互作用主要是PbI2平板的I原子与TiO2表面在PbI2 / TiO2界面的Ti原子之间的键合。还讨论了基于ZnO和ZnO @ TiO2 NRs的PSC中载流子迁移和复合的机理。这些结果突出了ZnO @ TiO2 NRs作为全固态PSC的ETL的潜力,具有高效率和良好的稳定性。

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