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Solution-processed indium oxide electron transporting layers for high-performance and photo-stable perovskite and organic solar cells

机译:Solution-processed氧化铟电子高性能和运输层photo-stable钙钛矿和有机太阳能电池

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摘要

Interface engineering is considered the key to improving the device performance and stability of solar cells. In particular, TiO2 nanostructures, when used as electron transporting layers (ETLs) in metal halide perovskite solar cells (PSCs), led to excellent power conversion efficiencies (PCEs) of over 20%. They effectively transferred charge carriers from the perovskite and suppressed charge recombination at the interfaces. However, the photocatalytic effect of TiO2 on the perovskite can significantly degrade the device performance under ultraviolet illumination. Therefore, other classes of n-type metal oxides with a wide band gap should be developed to improve their photo-stability. Herein, we demonstrate the development of In2O3 thin films by a solution process and their application as ETLs in PSCs and organic solar cells (OSCs). Pin hole-free In2O3 ETLs obtained by the thermal decomposition of an In precursor thin film exhibit high conductivity (2.49 x 10(-4) S cm(-1)) and low surface roughness (7.33 nm). This leads to impressive PCEs of 14.63% and 3.03% for the PSC and the inverted OSC, respectively. Furthermore, the In2O3PSC shows better photo-stability than the TiO2-PSC by virtue of the wider band gap of In2O3, which leads to a PCE retention of 74% and 46%, relative to the initial PCE values of the PSC and the inverted OSC, respectively.
机译:接口工程被认为是关键提高设备的性能和稳定性太阳能电池。当用作电子传输层(etl)金属卤化物钙钛矿太阳能电池(已经)导致优秀的能量转化效率(pc)的20%以上。从钙钛矿和电荷载体抑制电荷复合的接口。在钙钛矿二氧化钛可以显著降低紫外线下的设备性能照明。金属氧化物与宽的带隙改善photo-stability开发。在此,我们证明研究的发展薄膜的过程和他们的解决方案应用程序已经和有机太阳能的etl细胞(osc)。热分解的一个前兆薄膜具有高导电率(2.49 x10(4)厘米(1))和低表面粗糙度(7.33海里)。3.03%的PSC和反向OSC,分别。photo-stability比TiO2-PSC美德的宽禁带研究,导致PCE保留74%和46%,相对的PSC和最初的PCE值分别倒OSC。

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