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首页> 外文期刊>ACS applied materials & interfaces >Over 20% Efficiency in Methylammonium Lead Iodide Perovskite Solar Cells with Enhanced Stability via 'in Situ Solidification' of the TiO2 Compact Layer
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Over 20% Efficiency in Methylammonium Lead Iodide Perovskite Solar Cells with Enhanced Stability via 'in Situ Solidification' of the TiO2 Compact Layer

机译:在TiO2紧凑层的“原位凝固”中具有增强的稳定性的甲基庚烷铅碘化物钙钛矿太阳能电池超过20%

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摘要

In methylammonium lead iodide (MAPbI(3)) perovskite solar cells (PSCs), the device performance is strongly influenced by the TiO2 electron transport layer (ETL). Typically, the ETL needs to simultaneously be thin and pinhole-free to have high transmittance and avoid shunting. In this work, we develop an "in situ solidification" process following spin coating in which the titanium-based precursor (titanium(diisopropoxide) bis(2,4-pentanedionate)) is dried under vacuum to rapidly achieve continuous TiO2 layers. We refer to this as "gas-phase quenching". This results in thin (60 +/- 10 nm), uniform, and pinhole-free TiO2 films. The PSCs based on the gas-phase quenched TiO2 exhibits improved power conversion efficiency, with a median value of 18.23% (champion value of 20.43%), compared to 9.03 and 14.09% for the untreated devices. Gas-phase quenching is further shown to be effective in enabling efficient charge transfer at the MAPbI(3)/TiO2 heterointerface. Furthermore, the stability of the gas-phase quenched devices is enhanced in ambient air as well as under 1 sun illumination. In addition, we achieve 12.1% efficiency in upscaled devices (1.1 cm(2) active area).
机译:在甲基甲基铅碘化物(MAPBI(3))钙钛矿太阳能电池(PSC),器件性能受到TiO2电子传输层(ETL)的强烈影响。通常,ETL需要同时薄,无花针透射率并避免分流。在这项工作中,我们在旋转涂层之后开发“原位凝固”过程,其中基于钛的前体(二异丙氧化钛)双(2,4-戊丙酸酯))在真空下干燥以快速达到连续的TiO 2层。我们将此称为“气相淬火”。这导致薄(60 +/- 10nm),均匀和无孔的TiO 2薄膜。基于气相猝灭TiO 2的PSCs表现出改善的功率转换效率,中值18.23%(冠军值20.43%),而未处理装置的9.03和14.09%。进一步示出气相猝灭可有效在MAPBI(3)/ TiO 2异化面上能够有效电荷转移。此外,气相淬火器件的稳定性在环境空气中增强,并且在1以下的阳光照射下。此外,我们在上部设备(1.1cm(2)有源区)中达到12.1%的效率。

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